<?xml version="1.0" encoding="UTF-8"?><article xml:lang="en" article-type="research-article"><front><journal-meta><journal-id journal-id-type="pmc-domain-id">365</journal-id><journal-id journal-id-type="pmc-domain">springeropen</journal-id><journal-title-group><journal-title>Neurotoxicity Research</journal-title><abbrev-journal-title>Neurotox Res</abbrev-journal-title></journal-title-group></journal-meta><article-meta><article-id pub-id-type="pmcid">PMC5047950</article-id><article-id pub-id-type="pmcaid">5047950</article-id><article-id pub-id-type="pmcaiid">5047950</article-id><article-id pub-id-type="pmid">27577742</article-id><article-id pub-id-type="doi">10.1007/s12640-016-9662-0</article-id><title-group><article-title>The Influence of the CB1 Receptor Ligands on the Schizophrenia-Like Effects in Mice Induced by MK-801</article-title></title-group><contrib-group content-type="author"><contrib><name name-style="western"><surname>Kruk-Slomka</surname><given-names initials="M">Marta</given-names></name><xref ref-type="aff" rid="Aff1">1</xref><xref ref-type="author-notes" rid="_fncrsp93pmc__">✉</xref></contrib><contrib><name name-style="western"><surname>Budzynska</surname><given-names initials="B">Barbara</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib><contrib><name name-style="western"><surname>Slomka</surname><given-names initials="T">Tomasz</given-names></name><xref ref-type="aff" rid="Aff2">2</xref></contrib><contrib><name name-style="western"><surname>Banaszkiewicz</surname><given-names initials="I">Izabela</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib><contrib><name name-style="western"><surname>Biala</surname><given-names initials="G">Grazyna</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib></contrib-group><aff id="Aff1"><label>1</label>Department of Pharmacology and Pharmacodynamics, Medical University of Lublin, Chodzki 4a Street, 20-093 Lublin, Poland </aff><aff id="Aff2"><label>2</label>Department of Mathematics and Medical Biostatistics, Medical University of Lublin, Jaczewskiego 4 Street, 20-954 Lublin, Poland </aff><author-notes><fn id="_fncrsp93pmc__"><label>✉</label><p>Corresponding author.</p></fn></author-notes><pub-date><day>30</day><month>8</month><year>2016</year></pub-date><volume>30</volume><issue>4</issue><fpage>658</fpage><page-range>658–676</page-range><pub-history><event event-type="pmc-release"><date><day>18</day><month>10</month><year>2016</year></date></event></pub-history><permissions><copyright-statement>© The Author(s) 2016</copyright-statement><license><license-p>
<bold>Open Access</bold>This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (<ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://creativecommons.org/licenses/by/4.0/" ext-link-type="uri">http://creativecommons.org/licenses/by/4.0/</ext-link>), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.</license-p></license></permissions><self-uri xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="12640_2016_Article_9662.pdf" content-type="pmc-pdf"><?cloudpmc-path 35bb/5047950/16dabcf9dd52/12640_2016_Article_9662.pdf?><?cloudpmc-bucket app?><?size 961855?></self-uri><abstract id="Abs1"><title>Abstract</title><p>A growing body of psychiatric research has emerged, focusing on the role of endocannabinoid system in psychiatric disorders. For example, the endocannabinoid system, via cannabinoid CB (CB1 and CB2) receptors, is able to control the function of many receptors, such as <italic>N</italic>-methyl-<sc>d</sc>-aspartate (NMDA) receptors connected strictly with psychosis or other schizophrenia-associated symptoms. The aim of the present research was to investigate the impact of the CB1 receptor ligands on the symptoms typical for schizophrenia. We provoked psychosis-like effects in mice by an acute administration of NMDA receptor antagonist, MK-801 (0.1–0.6 mg/kg). An acute administration of MK-801 induced psychotic symptoms, manifested in the increase in locomotor activity (hyperactivity), measured in actimeters, as well as the memory impairment, assessed in the passive avoidance task. We revealed that an acute injection of CB1 receptor agonist, oleamide (5–20 mg/kg), had no influence on the short- and long-term memory-related disturbances, as well as on the hyperlocomotion in mice, provoking by an acute MK-801. In turn, an amnestic effects or hyperactivity induced by an acute MK-801 was attenuated by an acute administration of AM 251 (0.25–3 mg/kg), a CB1 receptor antagonist. The present findings confirm that endocannabinoid system is able to modify a variety of schizophrenia-like responses, including the cognitive disturbances and hyperlocomotion in mice. Antipsychotic-like effects induced by CB1 receptor antagonist, obtained in our research, confirm the potential effect of CB1 receptor blockade and could have important therapeutic implications on clinical settings, in the future.</p><sec id="kwd-group1" xml:lang="en" sec-type="kwd-group" disp-level="2"><p><bold>Keywords:</bold> Schizophrenia, Endocannabinoid system, CB1 receptor ligands, NMDA receptor antagonist, Mice</p></sec></abstract><custom-meta-group><custom-meta><meta-name>status</meta-name><meta-value>released</meta-value></custom-meta><custom-meta><meta-name>display-pdf</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>is-in-collection-domain</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>is-olf</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-manuscript</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-preprint</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-journal-matter</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-scanned</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-retracted</meta-name><meta-value>no</meta-value></custom-meta></custom-meta-group></article-meta><notes notes-type="article-notes"><sec id="historyarticle-meta1" sec-type="history" disp-level="2"><p>Received 2016 Jan 30; Revised 2016 Aug 12; Accepted 2016 Aug 16; Issue date 2016.</p></sec></notes></front><body><sec id="Sec1" disp-level="1"><title>Introduction</title><p>Schizophrenia is a chronic, severe, mental disorder usually characterized by abnormal social behavior. The main symptoms of schizophrenia are often grouped into three major diagnostic classes: positive, negative (or deficit) symptoms, and cognitive disorders (Lewis and Liberman <xref rid="CR37" ref-type="bibr">2000</xref>).</p><p>It has been known that the function of different neurotransmitters systems, such as dopaminergic system, glutamatergic system, gamma-aminobutyric (GABA)-related system, or/and endocannabinoid system, is altered in psychosis (Broome et al. <xref rid="CR13" ref-type="bibr">2005</xref>; Carlsson <xref rid="CR17" ref-type="bibr">2004</xref>). The most known hypothesis for schizophrenia is the glutamate (Glu)-related hypothesis. Glu is the major excitatory neurotransmitter in the brain which has a leading role in neural physiology, especially in mechanisms of synaptic plasticity, such as the long-term potentiation (LTP) and long-term depression underlying cellular basis of some phases of memory and learning (Riedel et al. <xref rid="CR51" ref-type="bibr">2003</xref>; Shapiro <xref rid="CR57" ref-type="bibr">2001</xref>). It has been revealed that glutamatergic transmission through <italic>N</italic>-methyl-<sc>d</sc>-aspartate (NMDA)-type receptors is strictly implicated in specific symptoms of schizophrenia, such as psychosis. Furthermore, glutamatergic hypofunction, closely associated with NMDA receptors hypofunction, is currently believed to provoke dopaminergic deregulation observed in the brain of patients with schizophrenia (Harrison and Weinberger <xref rid="CR25" ref-type="bibr">2005</xref>; Javitt <xref rid="CR28" ref-type="bibr">2007</xref>) and underlie the symptoms recognized as schizophrenia (Mohn et al. <xref rid="CR45" ref-type="bibr">1999</xref>; Stone et al. <xref rid="CR58" ref-type="bibr">2007</xref>). Therefore, agonists of NMDA receptors may have the potential to attenuate the symptoms of schizophrenia, while antagonists of these receptors produce psychotic symptoms and others schizophrenia-associated symptoms (Abi-Saab et al. <xref rid="CR1" ref-type="bibr">1998</xref>).</p><p>A variety of pre-clinical and clinical studies have indicated that endocannabinoid system participate in many central pathways connected with psychosis-like state, including glutamatergic transmission. In hippocampal slice cultures (Khaspekov et al. <xref rid="CR29" ref-type="bibr">2004</xref>), and in cultured neurons (Kim et al. <xref rid="CR30" ref-type="bibr">2006</xref>), it has been demonstrated that endocannabinoid system through cannabinoid (CB: CB1 and CB2) receptors is involved in the control of NMDA receptors-related neuronal dysregulation, connected with schizophrenia-like symptoms. This relationship has been confirmed in behavioral studies (Liu et al. <xref rid="CR41" ref-type="bibr">2009</xref>; Marsicano et al. <xref rid="CR42" ref-type="bibr">2003</xref>). For example, in animal models, it has been demonstrated that CB1 receptor agonists often induced cognitive impairments in rodents (Ferrari et al. <xref rid="CR22" ref-type="bibr">1999</xref>; Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>; Pamplona and Takahashi <xref rid="CR49" ref-type="bibr">2006</xref>), whereas the antagonism of CB1 receptors generally enhanced rodent performance in variety memory tasks (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>; Lichtman <xref rid="CR39" ref-type="bibr">2000</xref>; Takahashi et al. <xref rid="CR60" ref-type="bibr">2005</xref>; Terranova et al. <xref rid="CR61" ref-type="bibr">1996</xref>). Additionally, CB1 receptor agonists induced psychosis-like symptoms, and CB1 receptor antagonists had antipsychotic properties evaluated in animal models of schizophrenia (Almeida et al. <xref rid="CR4" ref-type="bibr">2014</xref>; Levin et al. <xref rid="CR36" ref-type="bibr">2012</xref>; Roser and Haussleiter <xref rid="CR55" ref-type="bibr">2012</xref>).</p><p>Although the biochemical, molecular, and pharmacological studies demonstrating functional interactions between the glutamatergic and endocannabinoid system are available (Rodríguez-Muñoz et al. <xref rid="CR54" ref-type="bibr">2012</xref>; Sánchez-Blázquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>), many other interactions in the context of schizophrenia have not been yet examined. Therefore, the aim of presented studies was to evaluate the psychotic potential of CB1 receptor ligands and their influence on the psychosis-related symptoms in mice. Our experiments have primarily focused on the complex implication of the CB1 receptor subtype in the schizophrenia-associated symptoms in mice, using a pharmacological animal model of schizophrenia. We used a potent agonist of CB1 receptor, oleamide, and a selective CB1 receptor antagonist, AM 251. To provoke the symptoms of schizophrenia in mice, we used NMDA receptor antagonist, MK-801. It has been known that an acute inhibition of NMDA receptors, e.g., by MK-801, provokes schizophrenia-like behavior in mice, both positive and negative symptoms of this disorder, and shows phenomenological validity as a model. This model is often used to predict the effect of many compounds with potential antipsychotic properties (Large <xref rid="CR35" ref-type="bibr">2007</xref>). Concerning animal models, it is well assumed that an acute administration of MK-801 in rodents induces psychotic symptoms, manifested in the increase in locomotor activity (hyperactivity) and memory impairment. Hyperlocomotion in rodents has been correlated with the positive clinical symptoms of schizophrenia (psychosis); in turn, memory-related disturbances evaluated in animal tests have been correlated to the cognitive deficits in humans (Arnt and Skarsfeldt <xref rid="CR5" ref-type="bibr">1998</xref>; Bubenίkova-Valesova et al. <xref rid="CR14" ref-type="bibr">2008</xref>; Micale et al. <xref rid="CR43" ref-type="bibr">2013</xref>; Peleg-Raibstein et al. <xref rid="CR50" ref-type="bibr">2012</xref>). In our studies, a different stages (acquisition, consolidation and retrieval) of short- and long-term memory-related responses in mice were measured in the commonly used animal model of memory—the passive avoidance (PA) task—while locomotion was measured in actimeters.</p><p>The results of this study will help increase knowledge on the role of CB1 receptors, in the positive as well as cognitive symptoms typical for schizophrenia, including interactions between these receptors with other receptors strictly associated with schizophrenia, e.g., NMDA receptors. Perhaps, our results can be used to initiate new research to clinical level and more effective strategies for the control/attenuation of symptoms of schizophrenia and/or other similar psychotic disorders.</p></sec><sec id="Sec2" disp-level="1"><title>Materials and Methods</title><sec id="Sec3" disp-level="2"><title>Animals</title><p>The experiments were carried out on naive male Swiss mice (Farm of Laboratory Animals, Warszawa, Poland) weighing 20–30 g. The animals were maintained under standard laboratory conditions (12-h light/dark cycle, room temperature 21 ± 1 °C) with free access to tap water and laboratory feed (Agropol, Motycz, Poland) in their home cages, and adapted to the laboratory conditions for at least 1 week. Each experimental group consisted of 8–12 animals. All behavioral experiments were performed between 8:00 and 15:00, and were conducted according to the National Institute of Health Guidelines for the Care and Use of Laboratory Animals and to the European Community Council Directive for the Care and Use of laboratory animals of 22 September 2010 (2010/63/EU) and approved by the local ethics committee.</p></sec><sec id="Sec4" disp-level="2"><title>Drugs</title><p>The tested compounds were as follows:</p><list list-type="bullet"><list-item><p>Oleamide (5, 10, 20 mg/kg) (Tocris, USA)—CB1 receptor agonist.</p></list-item><list-item><p>AM 251 (0.25, 0.5, 1, 3 mg/kg) (Tocris, USA)—CB1 receptor antagonist.</p></list-item><list-item><p>MK-801 (0.1, 0.3, 0.6 mg/kg) (Tocris, USA)—NMDA receptor antagonist.</p></list-item></list><p>All CB compounds and MK-801 were suspended in a 1 % solution of Tween 80 (Sigma, St. Louis, MO, USA) in saline solution (0.9 % NACl) and administered intraperitoneally (ip) at a volume of 10 ml/kg. Fresh drug solutions were prepared on each day of experimentation. Control groups received injections of saline with Tween 80 (vehicle) at the same volume and by the same route of administration.</p><p>Experimental doses of drugs used and procedures were selected on the basis of literature data (Akanmu et al. <xref rid="CR2" ref-type="bibr">2007</xref>; Barzegar et al. <xref rid="CR8" ref-type="bibr">2015</xref>; Bialuk and Winnicka <xref rid="CR11" ref-type="bibr">2011</xref>; Bubeníková-Valesová et al. <xref rid="CR15" ref-type="bibr">2010</xref>; Javadi-Paydar et al. <xref rid="CR27" ref-type="bibr">2012</xref>; Murillo-Rodríguez et al. <xref rid="CR46" ref-type="bibr">2001</xref>; Nestler and Hyman <xref rid="CR47" ref-type="bibr">2010</xref>), our previous experiments (Biala and Kruk <xref rid="CR9" ref-type="bibr">2008</xref>; Biala et al. <xref rid="CR10" ref-type="bibr">2009</xref>; Budzynska et al. <xref rid="CR16" ref-type="bibr">2009</xref>; Kruk-Slomka et al. <xref rid="CR32" ref-type="bibr">2015a</xref>, <xref rid="CR33" ref-type="bibr">b</xref>; Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>), and preliminary studies.</p></sec><sec id="Sec5" disp-level="2"><title>Experimental Procedures</title><p>We used an animal model of schizophrenia. The used procedure is commonly accepted (Bubeníková-Valesová et al. <xref rid="CR15" ref-type="bibr">2010</xref>; Nestler and Hyman <xref rid="CR47" ref-type="bibr">2010</xref>) and is based on the psychotic properties of NMDA receptor antagonist, e.g., MK-801. We provoked the schizophrenia-like behaviors (cognitive disturbances and hyperlocomotion) in mice by an acute administration of MK-801.</p><p>Next, we evaluated the influence of CB1 receptor ligands, oleamide and AM 251, on the above schizophrenia-like effects in mice provoked by MK-801. Memory-related responses in mice were measured in the PA task, locomotion was measured in actimeters.</p><p>In the presented experiments, we used an independent groups of mice for each kind of behavioral experiment (separate group of mice for the assessment of memory-related effects and separate group of mice for the assessment of locomotor activity), for each drug and dose.</p></sec><sec id="Sec6" disp-level="2"><title>Memory-Related Responses</title><p>The apparatus of the PA consisted of two-compartment acrylic box with a lighted compartment (10 × 13 × 15 cm) and darkened compartment (25 × 20 × 15 cm). The light chamber was illuminated by a fluorescent light (8 W) and was connected to the dark chamber which was equipped with an electric grid floor. Entrance of animals to the dark box was punished by an electric foot shock (0.2 mA for 2 s).</p><p>On the first day of training (pretest), mice were placed individually into the light compartment and allowed to explore the light box. After 30 s, the guillotine door was raised to allow the mice to enter the dark compartment. When the mice entered to the dark compartment, the guillotine door was closed and an electric foot shock (0.2 mA) of 2 s duration was delivered immediately to the animal via grid floor. The latency time for entering the dark compartment was recorded (TL1). The mouse which did not enter spontaneously into the dark box within 300 s was excluded from further tests. In the subsequent trial (retention), the same mice were again placed individually in the light compartment of the PA apparatus. After a 30-s adaptation period in the light (safe) chamber, the door between the compartments was raised and the time taken to re-enter the dark compartment was recorded (TL2). No foot shock was applied in this trial. Basically, in this kind of procedure, when the mouse did not enter spontaneously into the dark box within 300 s, the test was stopped.</p><p>Depending on the procedure used, PA test allows examining different durations of memory (short-term and long-term memory) according to the period between training and test, as well as different stages of memory (acquisition, consolidation, and retrieval) according to the time of drug treatment.</p><p>When mice were tested 2 h after TL1, the short-term memory was assessed, whereas longer time (24 h) allows assess long-term memory processes. Drug administration before the first trial (before pretest) should interfere with the acquisition of information, and drug administration immediately after the first trial (after pretest) should exert an effect on the process of consolidation, while the administration of tested compounds before the second trial (before test) should interfere with the retrieval of memory information (Allami et al. <xref rid="CR3" ref-type="bibr">2011</xref>; Javadi-Paydar et al. <xref rid="CR27" ref-type="bibr">2012</xref>; Kruk-Slomka et al. <xref rid="CR32" ref-type="bibr">2015a</xref>; Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>).</p></sec><sec id="Sec7" disp-level="2"><title>Locomotion</title><p>Locomotion of mice was recorded individually in round actimeter cages (Multiserv, Lublin, Poland; 32 cm in diameter, two light beams) kept in a sound-attenuated experimental room. Two photocell beams, located across the axis, automatically measured animal’s movements. The horizontal locomotor activity, i.e., the number of photocell beam breaks, was automatically measured with a 20-min interval for 200 min (Mohn et al. <xref rid="CR45" ref-type="bibr">1999</xref>; Zhou et al. <xref rid="CR63" ref-type="bibr">2012</xref>).</p></sec><sec id="Sec8" disp-level="2"><title>Treatment</title><sec id="Sec9" disp-level="3"><title>For Memory-Related Responses</title><p>The first step of experiment was designed to estimate the influence of MK-801 (0.1, 0.3 and 0.6 mg/kg; ip) on the different stages of short- as well as long-term memory in mice, using the PA test.</p><p>For the <italic>acquisition of memory</italic>, MK-801 or vehicle, for the control group, was administered 30 min before the first trial, and mice were re-tested after 2 h (short-term memory) or after 24 h (long-term memory). For the <italic>consolidation of memory</italic>, MK-801 or vehicle, for the control group, was injected immediately after the first trial, and mice were re-tested after 2 h or after 24 h. Finally, for the <italic>retrieval of memory</italic>, MK-801 or vehicle, for the control group, was injected 30 min before retrieval and that retrieval was carried out 2 or 24 h after the first trial (Table <xref rid="Tab1" ref-type="table">1</xref>).</p><table-wrap id="Tab1" position="float"><?disp-level 4?><label>Table 1</label><caption><p>The scheme of MK-801 or vehicle administration during the assessment of short- and long-term memory acquisition (A), consolidation (B), or retrieval (C) in the PA test</p></caption><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="6" rowspan="1">A. Acquisition of memory</th></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">30 min</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">30 min</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="6" rowspan="1">B. Consolidation of memory</th></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Dug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="5" rowspan="1">C. Retrieval of memory</th><th align="left" colspan="1" rowspan="1"/></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">30 min</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">30 min</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table></table-wrap><p>Based on this pilot experiment, we have chosen the most effective doses of MK-801 in the PA test in mice for the next experiments with CB1 receptor ligands. After that, based on the available literature data (Barzegar et al. <xref rid="CR8" ref-type="bibr">2015</xref>) and primarily on the results obtained from our previous experiments (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>), in which we determined the effects of an acute injection of different doses of oleamide (5–20 mg/kg), a CB1 receptor agonist and different doses of AM 251 (0.25–3 mg/kg), a CB1 receptor antagonist, on the short-term or long-term memory stages in the inhibitory avoidance (IA) task in mice, we have chosen the non-effective dose of oleamide (5 mg/kg) and AM 251 (0.25 mg/kg) for the next experiment with MK-801. We evaluated the influence of oleamide and AM 251 on the memory-related responses induced by MK-801 in the PA task.</p><p>Non-effective oleamide (5 mg/kg; ip) (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>) or vehicle was administered acutely 15 min before an acute injection of MK-801 (0.3 mg/kg, ip) or vehicle. Similarly, non-effective dose of AM 251 (0.25 mg/kg, ip) (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>) or vehicle were administered acutely 15 min before an acute injection of MK-801 (0.3 mg/kg, ip) or vehicle. The mice were then tested for <italic>acquisition, consolidation,</italic> and <italic>retrieval</italic> of short- and long-term memory in the same scheme described above and presented in the Table <xref rid="Tab2" ref-type="table">2</xref>.</p><table-wrap id="Tab2" position="float"><?disp-level 4?><label>Table 2</label><caption><p>The scheme of oleamide (5 mg/kg) or AM 251 (0.25 mg/kg) and MK-801 (0.3 mg/kg) co-administration during the assessment of short- and long-term memory acquisition (A), consolidation (B), or retrieval (C) in the PA test</p></caption><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="8" rowspan="1">A. Acquisition of memory</th></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="8" rowspan="1">B. Consolidation of memory</th></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="8" rowspan="1">C. Retrieval of memory</th></tr><tr><th align="left" colspan="1" rowspan="1"/><th align="left" colspan="1" rowspan="1">TL1</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug co-administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">TL2</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">Short-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">2 h</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">+</td></tr><tr><td align="left" colspan="1" rowspan="1">Long-term memory</td><td align="left" colspan="1" rowspan="1">+</td><td align="left" colspan="1" rowspan="1">24 h</td><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM (0.25 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table></table-wrap></sec><sec id="Sec10" disp-level="3"><title>For Psychotic-Like Symptoms</title><p>Horizontal locomotor activity was measured immediately after an acute injection of MK-801 (0.1; 0.3; 0.6 mg/kg; ip), oleamide (5; 10; 20 mg/kg, ip), AM 251 (0.25; 0.5; 1 and 3 mg/kg, ip), or vehicle for the control group. Next, we evaluated the impact of an acute administration of oleamide (5–20 mg/kg, ip) or AM 251 (0.25–3 mg/kg, ip) on the hyperlocomotion of mice provoked by an acute MK-801 (0.1–0.6 mg/kg, ip). For this purpose, oleamide, AM 251, or vehicle were administered 15 min before injection of MK-801 or vehicle. The mice were then tested immediately after the last injection (Table <xref rid="Tab3" ref-type="table">3</xref>).</p><table-wrap id="Tab3" position="float"><?disp-level 4?><label>Table 3</label><caption><p>The scheme of drugs (MK-801, oleamide, AM 251) or vehicle administration (A) and drugs co-administration (B) during the assessment of locomotor activity of mice</p></caption><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="3" rowspan="1">A. Locomotor activity</th></tr><tr><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Measurement of locomotor activity for 200 min</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">MK-801 (0.1–0.6 mg/kg), oleamide (5–20 mg/kg), AM 251 (0.25–3 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table><table frame="hsides" rules="groups"><thead><tr><th align="left" colspan="1" rowspan="1">B. Locomotor activity</th><th align="left" colspan="4" rowspan="1"/></tr><tr><th align="left" colspan="1" rowspan="1">Drugs administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Drug administration</th><th align="left" colspan="1" rowspan="1">Interval</th><th align="left" colspan="1" rowspan="1">Measurement of locomotor activity for 200 min</th></tr></thead><tbody><tr><td align="left" colspan="1" rowspan="1">oleamide (5 mg/kg) or AM 251 (0.25 and 0.5 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">15 min</td><td align="left" colspan="1" rowspan="1">MK-801 (0.3 and 0.6 mg/kg) or vehicle</td><td align="left" colspan="1" rowspan="1">0 min</td><td align="left" colspan="1" rowspan="1">+</td></tr></tbody></table></table-wrap></sec></sec><sec id="Sec11" disp-level="2"><title>Statistical Analysis</title><p>The statistical analysis was performed using one-way analysis of variance (ANOVA) or two-way ANOVA—for the factors of pretreatment (oleamide or AM 251), treatment (MK 801), and pretreatment/treatment interactions for the memory-related responses or for the factors of time, drugs, and time/drugs interactions for the psychotic-like symptoms.</p><p>Post hoc comparison of means was carried out with the Tukey’s test (for one-way ANOVA) or with the Bonferroni’s test (for two-way ANOVA) for multiple comparisons, when appropriate. The data were considered statistically significant at confidence limit of <italic>p</italic> &lt; 0.05. ANOVA analysis with Tukey’s or Bonferroni’s post-tests was performed using GraphPad Prism version 5.00 for Windows, GraphPad Software, San Diego California USA, <ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://www.graphpad.com" ext-link-type="uri">www.graphpad.com</ext-link>.</p><p>For the memory-related responses, the changes in PA performance were expressed as the difference between retention and training latencies and were taken as a latency index (LI). LI was calculated for each animal and reports as the ratio: LI = TL2−TL1/TL1, where <italic>TL1</italic> is the time taken to enter the dark compartment during the training and <italic>TL2</italic> is the time taken to re-enter the dark compartment during the retention (Chimakurthy and Talasila <xref rid="CR20" ref-type="bibr">2010</xref>).</p><p>For the psychotic-like symptoms, the horizontal locomotor activity, i.e., the number of photocell beam breaks, was measured.</p></sec></sec><sec id="Sec12" disp-level="1"><title>Results</title><p>First, we induced the memory disturbances characteristic for schizophrenia (negative symptoms), by the acute administration of MK-801, and evaluated the influence of CB1 receptor ligands on these memory impairment provoked by MK-801.</p><sec id="Sec13" disp-level="2"><title>Memory-Related Disturbances in the PA Test in Mice Provoked by an Acute Administration of MK-801</title><sec id="Sec14" disp-level="3"><title>Acquisition of Memory</title><p>One-way ANOVA revealed that administration of acute ip doses of MK-801 (0.1; 0.3 and 0.6 mg/kg) had a statistically significant effect on LI values for short-term memory acquisition [<italic>F</italic>(3.31) = 6.283; <italic>p</italic> = 0.0021], as well as for long-term memory acquisition [<italic>F</italic>(3.32) = 8.619; <italic>p</italic> = 0.0003]. Indeed, the post hoc Tukey’s test confirmed that the treatment with MK-801 (0.3 and 0.6 mg/kg) significantly decreased LI values in mice compared to those in the vehicle-treated control group (<italic>p</italic> &lt; 0.01—for short-term memory acquisition (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Aa), and <italic>p</italic> &lt; 0.01; <italic>p</italic> &lt; 0.001—for long-term memory acquisition, for the dose of 0.3 and 0.6 mg/kg, respectively) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Ab), indicating that MK-801, at these used doses, impaired both the short- and long-term acquisition of memory and learning.</p><fig id="Fig1" position="float"><?disp-level 4?><label>Fig. 1</label><caption><p>Effects of an acute MK-801 or saline administration on the latency index (LI) during the short-term or long-term acquisition trial <bold>(A),</bold> consolidation trial <bold>(B),</bold> and retrieval trial <bold>(C)</bold>, using the PA test in mice. MK-801 (0.1; 0.3 and 0.6 mg/kg; ip) or vehicle was injected 30 min before the first trial (<bold>A</bold>) or immediately after first trial (<bold>B</bold>), and mice were re-tested 2 h [for short-term memory (<bold>a</bold>)] or 24 h [for long-term memory (<bold>b</bold>)] later. In the case of retrieval of memory (<bold>C</bold>), oleamide, MK-801 (0.1, 0.3 and 0.6 mg/kg; ip) or vehicle was administered 2 h (<italic>a</italic>) or 24 h (<italic>b</italic>) after the first trial,and mice were re-tested 30 min after the last injection; <italic>n</italic> = 8–12; the mean ± SEM; *<italic>p</italic> <italic>&lt;</italic> 0.05; **<italic>p</italic> <italic>&lt;</italic> 0.01; ***<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle-treated control group; Tukey’s test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO1" xlink:href="12640_2016_9662_Fig1_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/86ec349c3023/12640_2016_9662_Fig1_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 1166?><?original-width 976?><?scaled-height 947?><?scaled-width 793?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig1_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/3fe54440aa7a/12640_2016_9662_Fig1_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="Sec50" disp-level="3"><title> Consolidation of Memory</title><p>One-way ANOVA indicated that administration of acute ip doses of MK-801 (0.1; 0.3 and 0.6 mg/kg) had a statistically significant effect on LI values for short-term memory consolidation [<italic>F</italic>(3.32) = 5.585; <italic>p</italic> = 0.0038], as well as for long-term memory consolidation [<italic>F</italic>(3.29) = 6.436; <italic>p</italic> = 0.0021]. Indeed, treatment with MK-801 significantly decreased LI values in mice compared to those in the vehicle-treated control group for short-term memory consolidation (<italic>p</italic> &lt; 0.05 for dose of 0.1 mg/kg; <italic>p</italic> &lt; 0.01 for dose of 0.3 mg/kg; Tukey’s test) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Ba), and for long-term memory consolidation (<italic>p</italic> &lt; 0.05 for dose of 0.3 mg/kg and 0.6 mg/kg; <italic>p</italic> &lt; 0.01 for dose of 0.1 mg/kg; Tukey’s test) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Bb), indicating that MK-801, at these used doses, impaired the short- and/or long-term consolidation of memory and learning.</p></sec><sec id="Sec51" disp-level="3"><title>Retrieval of Memory</title><p>One-way ANOVA indicated that administration of acute ip doses of MK-801 (0.1; 0.3 and 0.6 mg/kg) had a statistically significant effect on LI values for short-term memory retrieval [<italic>F</italic>(3.28) = 3.777; <italic>p</italic> = 0.0231], as well as for long-term memory consolidation [<italic>F</italic>(3.32) = 7.284; <italic>p</italic> = 0.0009]. Indeed, treatment with MK-801 significantly decreased LI values in mice compared to those in the vehicle-treated control group for short-term memory retrieval (<italic>p</italic> &lt; 0.05 for dose of 0.1 and 0.3 mg/kg; Tukey’s test) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Ca), and for long-term memory retrieval (<italic>p</italic> &lt; 0.05 for dose of 0.6 mg/kg; <italic>p</italic> &lt; 0.01 for dose of 0.1 and 0.3 mg/kg; Tukey’s test) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>Cb), indicating that MK-801, at these used doses, impaired the short- and/or long-term retrieval of memory and learning.</p><p>In our previously published experiments, we revealed that an acute injection of oleamide (10 and 20 mg/kg), a CB1 receptor agonist, diminished the short-term as well as long-term acquisition, consolidation/retention, and/or retrieval of memory and learning in the IA task. In turn, an acute injection of AM 251 (1 and 3 mg/kg), a CB1 receptor antagonist, improved stages of the short-term or long-term memory, mentioned above. This memory impairment induced by effective dose of oleamide (20 mg/kg) was reversed by a non-effective dose of CB1 receptor antagonist, AM 251 (0.25 mg/kg) in mice using the IA test, confirming that the CB1 receptor-related mechanism is one of the possible mechanisms responsible for memory and learning responses (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>).</p><p>Therefore, based on the results obtained from these cited experiments (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>), the non-effective dose of oleamide (5 mg/kg) and non-effective dose of AM 251 (0.25 mg/kg) were then chosen for the next behavioral experiment evaluating the influence of these CB1 receptor ligands on the above-described memory impairment, provoked by an acute injection of MK-801 (0.3 mg/kg), using the PA test in mice.</p></sec></sec><sec id="Sec17" disp-level="2"><title>The Influence of the Administration of Oleamide on the Memory Impairment Provoked by an Acute Administration of MK-801 in the PA Test in Mice</title><sec id="Sec18" disp-level="3"><title>Acquisition of Memory</title><p>For short-term memory acquisition, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.28) = 0.18; <italic>p</italic> = 0.6766], but there was a statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 11.40; <italic>p</italic> = 0.0022] and interactions [<italic>F</italic>(1.28) = 5.02; <italic>p</italic> = 0.0331]. The post hoc Bonferroni’s test confirmed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, pointing to the amnestic effect of this drug (<italic>p</italic> &lt; 0.01). However, oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Aa).</p><fig id="Fig2" position="float"><?disp-level 4?><label>Fig. 2</label><caption><p>Influence of oleamide on the memory-related responses, expressed as latency index (LI) during the short-term (<bold>a</bold>) or long-term (<bold>b</bold>) acquisition <bold>(A),</bold> consolidation <bold>(B</bold>), and retrieval <bold>(C)</bold> trial, induced by an acute administration of MK-801, using the PA test in mice. Non-effective dose of oleamide (5 mg/kg, ip) or vehicle was administered 15 min prior to vehicle or effective (0.3 mg/kg, ip) MK-801 injection. All drugs were administered 15 min before the first trial (<bold>A</bold>) or immediately after the first trial (<bold>B</bold>), and mice were re-tested 2 h (for short-term memory) or 24 h (for long-term memory) later. In the case of retrieval of memory (<bold>C</bold>), all drugs were administered 2 h (<bold>a</bold>) or 24 h (<bold>b</bold>) after the first trial, and mice were re-tested 15 min after the last injection; <italic>n</italic> = 8–12; the mean ± SEM; ^<italic>p</italic> <italic>&lt;</italic> 0.05; ^^<italic>p</italic> <italic>&lt;</italic> 0.01 vs. vehicle/vehicle-treated group; two-way ANOVA/Bonferroni test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO2" xlink:href="12640_2016_9662_Fig2_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/60494481fa61/12640_2016_9662_Fig2_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 3887?><?original-width 2400?><?scaled-height 1276?><?scaled-width 788?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig2_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/8f917a8da508/12640_2016_9662_Fig2_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>For long-term memory acquisition, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.32) = 0.46; <italic>p</italic> = 0.5003] as well as by interactions between oleamide (5 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.32) = 0.68; <italic>p</italic> = 0.4170], but there was a statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.32) = 9.97; <italic>p</italic> = 0.0035]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming the amnestic effect of this drug (<italic>p</italic> &lt; 0.05). Oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Ab).</p></sec><sec id="Sec63" disp-level="3"><title>Consolidation of Memory</title><p>For short-term memory consolidation, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.28) = 0.01; <italic>p</italic> = 0.9200] as well as by interactions between oleamide (5 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 2.20; <italic>p</italic> = 0.1496], but there was a statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 5.11; <italic>p</italic> = 0.0318]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming the amnestic effect of this drug (<italic>p</italic> &lt; 0.05). Oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Ba).</p><p>For long-term memory consolidation, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.25) = 0.20; <italic>p</italic> = 0.6585], MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.25) = 2.49; <italic>p</italic> = 0.1270], as well as by interactions between oleamide (5 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.25) = 0.84; <italic>p</italic> = 0.3694]. Oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Bb).</p></sec><sec id="Sec64" disp-level="3"><title>Retrieval of Memory</title><p>For short-term memory retrieval, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.26) = 2.59; <italic>p</italic> = 0.1196], as well as by interactions between oleamide (5 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.26) = 1.23; <italic>p</italic> = 0.2774], but there was a statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.26) = 11.17; <italic>p</italic> = 0.0025]. The post hoc Bonferroni’s test confirmed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, pointing to the amnestic effect of this drug (<italic>p</italic> &lt; 0.01), and that oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Ca).</p><p>For long-term memory retrieval, two-way ANOVA analyses revealed that there was no statistically significant effect caused by oleamide (5 mg/kg) pretreatment [<italic>F</italic>(1.24) = 1.47; <italic>p</italic> = 0.2377], as well as by interactions between oleamide (5 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.24) = 1.10; <italic>p</italic> = 0.3057], but there was a statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.24) = 25.02; <italic>p</italic> &lt; 0.0001]. The post hoc Bonferroni’s test confirmed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, pointing to the amnestic effect of this drug (<italic>p</italic> &lt; 0.01), and that oleamide (5 mg/kg) had no influence on this amnestic effect of MK-801 (0.3 mg/kg) (Fig. <xref rid="Fig2" ref-type="fig">2</xref>Ca).</p></sec></sec><sec id="Sec21" disp-level="2"><title>The Influence of the Administration of AM 251 on the Memory Impairment Provoked by MK-801 in the PA Test in Mice</title><sec id="Sec22" disp-level="3"><title>Acquisition of Memory</title><p>For short-term memory acquisition, two-way ANOVA analyses revealed that there was no statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 0.29; <italic>p</italic> = 0.5922], but there was a statistically significant effect caused by AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.28) = 7.37; <italic>p</italic> = 0.0112] and interactions [<italic>F</italic>(1.28) = 11.52; <italic>p</italic> = 0.0021]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05). This amnestic effect of MK-801 (0.3 mg/kg) was reversed by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.01 vs. vehicle/MK-801(0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Aa).</p><fig id="Fig3" position="float"><?disp-level 4?><label>Fig. 3</label><caption><p>Influence of AM 251 on the memory-related responses, expressed as latency index (LI) during the short-term (<bold>a</bold>) or long-term (<bold>b</bold>) acquisition <bold>(A),</bold> consolidation <bold>(B</bold>), and retrieval <bold>(C)</bold> trial, induced by an acute administration of MK-801, using the PA test in mice. Non-effective dose of AM 251 (0.25 mg/kg, ip) or vehicle was administered 15 min prior to vehicle or effective (0.3 mg/kg, ip) MK-801 injection. All drugs were administered 15 min before the first trial (<bold>A</bold>) or immediately after the first trial (<bold>B</bold>), and mice were re-tested 2 h (for short-term memory) or 24 h (for long-term memory) later. In the case of retrieval of memory (<bold>C</bold>), all drugs were administered 2 h (a) or 24 h (<bold>b</bold>) after the first trial, and mice were re-tested 15 min after the last injection; <italic>n</italic> = 8–12; the mean ± SEM; ^<italic>p</italic> <italic>&lt;</italic> 0.05 vs. vehicle/vehicle-treated group; *<italic>p</italic> <italic>&lt;</italic> 0.05; ***<italic>p</italic> <italic>&lt;</italic> 0.01 vs. vehicle/MK-801 (0.3 mg/kg)-treated group; Bonferroni’s test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO3" xlink:href="12640_2016_9662_Fig3_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/365bb6994a1b/12640_2016_9662_Fig3_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 3917?><?original-width 2400?><?scaled-height 1276?><?scaled-width 782?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig3_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/25988389950e/12640_2016_9662_Fig3_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>For long-term memory acquisition, two-way ANOVA analyses revealed that there was a statistically significant effect of interactions between MK-801 (0.3 mg/kg) treatment and AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.30) = 7.90; <italic>p</italic> = 0.0086], but there was no statistically significant effect of MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.30) = 0.51; <italic>p</italic> = 0.4819], as well as AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.30) = 2.59; <italic>p</italic> = 0.1178]. The post hoc Bonferroni’s test indicated that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05), and this memory impairment caused by MK-801 (0.3 mg/kg) was attenuated by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.05 vs. vehicle/MK-801 (0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Ab).</p></sec><sec id="Sec66" disp-level="3"><title>Consolidation of Memory</title><p>For short-term memory consolidation, two-way ANOVA analyses revealed that there was no statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.29) = 0.78; <italic>p</italic> = 0.3858], but there was a statistically significant effect caused by AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.29) = 10.74; <italic>p</italic> = 0.0027] and interactions [<italic>F</italic>(1.29) = 21.45; <italic>p</italic> &lt; 0.0001]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05). This amnestic effect of MK-801 (0.3 mg/kg) was reversed by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.001 vs. vehicle/MK-801(0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Ba).</p><p>For long-term memory consolidation, two-way ANOVA analyses revealed that there was no statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.25) = 0.06; <italic>p</italic> = 0.802], not quite statistically significant effect caused by AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.25) = 3.39; <italic>p</italic> = 0.0774], and there was a statistically significant effect caused by interactions between AM 251 (0.25 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.25) = 10.33; <italic>p</italic> = 0.0036]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05), and additionally, this amnestic effect of MK-801 (0.3 mg/kg) was reversed by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.05 vs. vehicle/MK-801(0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Bb).</p></sec><sec id="Sec24" disp-level="3"><title>Retrieval of Memory</title><p>For short-term memory retrieval, two-way ANOVA analyses revealed that there was no statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 0.00; <italic>p</italic> = 0.9671], not quite statistically significant effect caused by AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.28) = 2.92; <italic>p</italic> = 0.0985], and there was a statistically significant effect caused by interactions between AM 251 (0.25 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.28) = 6.74; <italic>p</italic> = 0.0148]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05), and additionally, this amnestic effect of MK-801 (0.3 mg/kg) was attenuated by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.05 vs. vehicle/MK-801(0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Ca).</p><p>For long-term memory retrieval, two-way ANOVA analyses revealed that there was no statistically significant effect caused by MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.27) = 0.35; <italic>p</italic> = 0.5584], not quite statistically significant effect caused by AM 251 (0.25 mg/kg) pretreatment [<italic>F</italic>(1.27) = 3.34; <italic>p</italic> = 0.0788], and there was a statistically significant effect caused by interactions between AM 251 (0.25 mg/kg) pretreatment and MK-801 (0.3 mg/kg) treatment [<italic>F</italic>(1.27) = 7.60; <italic>p</italic> = 0.0103]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.3 mg/kg significantly decreased LI values in mice in the PA test in comparison to the vehicle/vehicle-treated mice, confirming an amnestic effect of this drug (<italic>p</italic> &lt; 0.05). This memory impairment provoked by MK-801 (0.3 mg/kg) was attenuated by AM 251 (0.25 mg/kg) (<italic>p</italic> &lt; 0.05 vs. vehicle/MK-801(0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>Cb).</p><p>In the next step, we induced the hyperlocomotion characteristic for schizophrenia (positive symptoms) provoked by the acute administration of MK-801 and evaluated the influence of CB1 receptor ligands on this MK-801-related hyperactivity.</p></sec></sec><sec id="Sec25" disp-level="2"><title>Hyperactivity of Mice Measured in Actimeters Provoked by an Acute Administration of MK-801</title><p>Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 41.83; <italic>p</italic> &lt; 0.0001], and MK-801 (0.1; 0.3 and 0.6 mg/kg) treatment [<italic>F</italic>(3.264) = 91.64; <italic>p</italic> <italic>&lt;</italic> 0.0001], as well as by interactions between time and MK-801 treatment [<italic>F</italic>(30.264) = 2.78; <italic>p</italic> &lt; 0.0001]. The Bonferroni’s test revealed that an acute injection of MK-801 at the dose of 0.3 mg/kg significantly increased locomotor activity of mice between 60 and 200 min of experiment as compared with the vehicle-administered control group (for 60 min of experiments <italic>p</italic> &lt; 0.01; for 80 and 100 min <italic>p</italic> &lt; 0.001; for 120–160 min <italic>p</italic> &lt; 0.01; for 180 and 200 min <italic>p</italic> &lt; 0.05). Similarly, the Bonferroni’s test revealed that an acute injection of MK-801 at the dose of 0.6 mg/kg significantly increased locomotor activity of mice between 80 and 200 min of experiment as compared with the vehicle-administered control group (for 80 min of experiments <italic>p</italic> &lt; 0.01; for 100–200 min <italic>p</italic> &lt; 0.001). MK-801 at the dose of 0.1 mg/kg had no influence on the locomotor activity of mice in comparison to the vehicle-treated control group (Fig. <xref rid="Fig4" ref-type="fig">4</xref>A).</p><fig id="Fig4" position="float"><?disp-level 3?><label>Fig. 4</label><caption><p>Effects of an acute MK-801 (<bold>A</bold>), oleamide (<bold>B</bold>), AM 251 (<bold>C</bold>) or vehicle administration on the locomotor activity in mice. MK-801 (0.1; 0.3 and 0.6 mg/kg; ip), oleamide (5; 10 and 20 mg/kg; ip), AM 251 (0.25; 0.5; 1 and 3 mg/kg; ip), or vehicle were immediately before the test; <italic>n</italic> = 8–12; the mean ± SEM; *<italic>p</italic> <italic>&lt;</italic> 0.05; **<italic>p</italic> <italic>&lt;</italic> 0.01; ***<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle-treated control group; Bonferroni’s test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO4" xlink:href="12640_2016_9662_Fig4_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/045b6bfd5fca/12640_2016_9662_Fig4_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 4369?><?original-width 2400?><?scaled-height 1436?><?scaled-width 789?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig4_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/278adf830848/12640_2016_9662_Fig4_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="Sec67" disp-level="2"><title>The Influence of CB1 Receptor Agonist, Oleamide, on the Locomotor Activity of Mice</title><p> Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 22.85; <italic>p</italic> &lt; 0.0001], and oleamide (5; 10 and 20 mg/kg) treatment [<italic>F</italic>(3.264) = 30.26; <italic>p</italic> &lt; 0.0001], but there was no statistically significant effect caused by interactions between time and oleamide treatment [<italic>F</italic>(30.264) = 0.95; <italic>p</italic> = 0.5512]. The Bonferroni’s test revealed that an acute injection of oleamide at the dose of 10 mg/kg significantly decreased locomotion in mice between 160 and 200 min of experiments in comparison to the vehicle-treated control group (<italic>p</italic> &lt; 0.05). Similarly, the Bonferroni’s test revealed that an acute injection of oleamide at the dose of 20 mg/kg significantly decreased locomotor activity of mice between 120 and 200 min of experiment as compared with the vehicle-treated control group (for 120 and 140 min of experiments <italic>p</italic> &lt; 0.01; for 160–200 min <italic>p</italic> &lt; 0.001). Oleamide at the dose of 5 mg/kg had no influence on the locomotor activity of mice in comparison to the vehicle-treated control group (Fig. <xref rid="Fig4" ref-type="fig">4</xref>B).</p></sec><sec id="Sec250" disp-level="2"><title> The Influence of CB1 Receptor Antagonist, AM 251, on the Locomotor Activity of Mice</title><p>Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.330) = 34.81; <italic>p</italic> &lt; 0.0001], and AM 251 (0.25; 0.5; 1 and 3 mg/kg) treatment [<italic>F</italic>(4.330) = 24.32; <italic>p</italic> &lt; 0.0001], but there was no statistically significant effect caused by interactions between time and AM 251 treatment [<italic>F</italic>(40.330) = 1.10; <italic>p</italic> = 0.3203]. The Bonferroni’s test revealed that an acute injection of AM 251 at the dose of 1 mg/kg significantly decreased locomotion in mice between 140 and 200 min of experiments in comparison to the vehicle-treated control group (for 140 and 160 min of experiments <italic>p</italic> &lt; 0.05; 180 and 200 min <italic>p</italic> &lt; 0.01). Similarly, the Bonferroni’s test revealed that an acute injection of AM 251 at the dose of 3 mg/kg significantly decreased locomotor activity of mice between 120 and 200 min of experiment as compared with the vehicle-administered control group (for 120 and 140 min of experiments <italic>p</italic> &lt; 0.01; for 160–200 min <italic>p</italic> &lt; 0.001). AM 251 at the doses of 0.25 and 0.5 mg/kg had no influence on the locomotor activity of mice in comparison to the vehicle-treated control group (Fig. <xref rid="Fig4" ref-type="fig">4</xref>C).</p><p>Based on the results obtained from these two experiments in the actimeters, the effective doses of MK-801 (0.3 and 0.6 mg/kg) and non-effective doses of oleamide (5 mg/kg) and AM 251 (0.25 and 0.5 mg/kg) were then chosen for the next behavioral experiment evaluating the involvement of CB1 receptors in the MK-801-induced hyperactivity.</p></sec><sec id="Sec28" disp-level="2"><title>The Influence of the Administration of Oleamide on the Hyperactivity of Mice Provoked by an Acute Administration of MK-801</title><p>Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 22.11; <italic>p</italic> <italic>&lt;</italic> 0.0001], and drugs (MK-801 (0.3 mg/kg) and/or oleamide (5 mg/kg) treatment [<italic>F</italic>(3.264) = 47.13; <italic>p</italic> <italic>&lt;</italic> 0.0001], but there was no statistically significant effect caused by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 0.89; <italic>p</italic> = 0.6358]. The post hoc Bonferroni’s test confirmed that an acute injection of MK-801 at the dose of 0.3 mg/kg significantly increased locomotor activity of mice between 80 and 200 min of experiment as compared with the vehicle/vehicle-injected control group (for 80 min of experiments <italic>p &lt;</italic> 0.01; for 100 min <italic>p &lt;</italic> 0.001; for 120–160 min <italic>p &lt;</italic> 0.01; for 180 and 200 min <italic>p &lt;</italic> 0.05). Oleamide (5 mg/kg) had no influence on MK-801 (0.3 mg/kg)-induced hyperactivity (Fig. <xref rid="Fig5" ref-type="fig">5</xref>A). Indeed, two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 39.46; <italic>p</italic> &lt; 0.0001], and drugs (MK-801 (0.6 mg/kg) and/or oleamide (5 mg/kg) treatment [<italic>F</italic>(3.264) = 72.39; <italic>p</italic> &lt; 0.0001], as well as by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 2.06; <italic>p</italic> = 0.0014]. The post hoc Bonferroni’s test revealed that MK-801 at the dose of 0.6 mg/kg significantly increased locomotor activity of mice in actimeters between 80 and 200 min of experiments (for 80 min of experiments <italic>p</italic> &lt; 0.05; for 100 min <italic>p</italic> &lt; 0.01; for 120–200 min <italic>p</italic> &lt; 0.001), in comparison to the vehicle/vehicle-treated mice. Oleamide (5 mg/kg) had no influence on MK-801 (0.6 mg/kg)-induced hyperactivity (Fig. <xref rid="Fig5" ref-type="fig">5</xref>B).</p><fig id="Fig5" position="float"><?disp-level 3?><label>Fig. 5</label><caption><p>Effect of oleamide on MK-801-induced hyperactivity in mice. Non-effective dose of oleamide (5 mg/kg; ip) or vehicle was administered 15 min prior to vehicle or effective (0.3 mg/kg; ip) <bold>(A)</bold> and (0.6 mg/kg; ip) <bold>(B)</bold> MK-801 injection. After the last injection, the mice were then tested in actimeters; <italic>n</italic> = 8–12; the mean ± SEM; *<italic>p</italic> <italic>&lt;</italic> 0.05; **<italic>p</italic> <italic>&lt;</italic> 0.01; ***<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle/vehicle-treated group; Bonferroni’s test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO5" xlink:href="12640_2016_9662_Fig5_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/d776e9d8acb8/12640_2016_9662_Fig5_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 388?><?original-width 976?><?scaled-height 315?><?scaled-width 793?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig5_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/d048fa543953/12640_2016_9662_Fig5_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="Sec29" disp-level="2"><title>The Influence of the Administration of AM 251 on the Hyperactivity of Mice Provoked by an Acute Administration of MK-801</title><p>1. Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 32.61; <italic>p</italic> &lt; 0.0001], and drugs (MK-801 (0.3 mg/kg) and/or AM 251 (0.25 mg/kg) treatment [<italic>F</italic>(3.264) = 56.55; <italic>p</italic> &lt; 0.0001], but there was no statistically significant effect caused by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 1.12; <italic>p</italic> = 0.3065]. The post hoc Bonferroni’s test confirmed that an acute injection of MK-801 at the dose of 0.3 mg/kg significantly increased locomotor activity of mice between 80 and 200 min of experiment in comparison to the vehicle/vehicle-treated mice (for 80 min of experiments <italic>p</italic> &lt; 0.01; for 100 min <italic>p</italic> &lt; 0.001, for 120–160 min <italic>p</italic> &lt; 0.01, for 180 and 200 min <italic>p</italic> &lt; 0.05). Moreover, this hyperactivity provoked by MK-801 (0.3 mg/kg) was attenuated by AM 251 (0.25 mg/kg) between 120 and 200 min of experiment (for 120–160 min of experiment <italic>p</italic> &lt; 0.05, for 180–200 min <italic>p</italic> &lt; 0.01 vs. vehicle/MK-801 (0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig6" ref-type="fig">6</xref>Aa). In turn, for the experiments dealing with MK-801 at the dose of 0.6 mg/kg, two-way ANOVA analyses indicated that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 55.82; <italic>p</italic> &lt; 0.0001], and drugs (MK-801 (0.6 mg/kg) and/or AM 251 (0.25 mg/kg) treatment [<italic>F</italic>(3.264) = 77.11; <italic>p</italic> &lt; 0.0001], as well as by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 2.79; <italic>p</italic> &lt; 0.0001]. The Bonferroni’s test confirmed that an acute injection of MK-801 at the dose of 0.6 mg/kg significantly increased locomotor activity of mice between 80 and 200 min of experiment as compared with the control vehicle/vehicle-treated mice, (for 80 min of experiments <italic>p</italic> &lt; 0.01; for 100–200 min <italic>p</italic> &lt; 0.001). AM 251 (0.25 mg/kg) had no influence on MK-801 (0.6 mg/kg)-induced hyperactivity (Fig. <xref rid="Fig6" ref-type="fig">6</xref>Ba).</p><fig id="Fig6" position="float"><?disp-level 3?><label>Fig. 6</label><caption><p>Effect of AM 251 on MK-801-induced hyperactivity in mice. Non-effective dose of AM 251 (0.25 mg/kg; ip) or vehicle was administered 15 min prior to vehicle or effective: (0.3 mg/kg; ip) <bold>(Aa)</bold> and (0.6 mg/kg; ip) <bold>(Ba)</bold> MK-801 injection. Similarly, non-effective dose of AM 251 (0.5 mg/kg; ip) or vehicle were administered 15 min prior to vehicle or effective: (0.3 mg/kg; ip) <bold>(Ab)</bold> and (0.6 mg/kg; ip) <bold>(Bb)</bold> MK-801 injection. After the last injection, the mice were then tested in actimeters; <italic>n</italic> = 8–12; the mean ± SEM; *<italic>p</italic> <italic>&lt;</italic> 0.05; **<italic>p</italic> <italic>&lt;</italic> 0.01; ***<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle/vehicle-treated group; ^<italic>p</italic> <italic>&lt;</italic> 0.05; ^^<italic>p</italic> <italic>&lt;</italic> 0.01; ^^^<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle/MK-801(0.3 mg/kg)-treated mice; <sup>#</sup>
<italic>p</italic> <italic>&lt;</italic> 0.05; <sup>##</sup>
<italic>p</italic> <italic>&lt;</italic> 0.01; <sup>###</sup>
<italic>p</italic> <italic>&lt;</italic> 0.001 vs. vehicle/MK-801(0.6 mg/kg)-treated mice Bonferroni’s test</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO6" xlink:href="12640_2016_9662_Fig6_HTML.jpg"><?cloudpmc-path blobs/35bb/5047950/7b49473b58f2/12640_2016_9662_Fig6_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 744?><?original-width 976?><?scaled-height 604?><?scaled-width 793?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="12640_2016_9662_Fig6_HTML.gif"><?cloudpmc-path blobs/35bb/5047950/2a8326f81513/12640_2016_9662_Fig6_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>2. Two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 40.66; <italic>p</italic> &lt; 0.0001], and drugs (MK-801 (0.3 mg/kg) and/or AM 251 (0.5 mg/kg) treatment [<italic>F</italic>(3.264) = 64.35; <italic>p</italic> &lt; 0.0001], but there was no statistically significant effect caused by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 1.36; <italic>p</italic> = 0.1093]. The post hoc Bonferroni’s test confirmed that an acute injection of MK-801 at the dose of 0.3 mg/kg significantly increased locomotor activity of mice between 40 and 200 min of experiment in comparison to the vehicle/vehicle-treated mice (for 40 min of experiments <italic>p</italic> &lt; 0.05, for 60–140 min <italic>p</italic> &lt; 0.001, for 160–200 min <italic>p</italic> &lt; 0.01). Moreover, this hyperactivity provoked by MK-801 (0.3 mg/kg) was attenuated by AM 251 (0.5 mg/kg) between 80 and 200 min of experiment (for 80–180 min of experiment <italic>p</italic> &lt; 0.01, for 200 min <italic>p</italic> &lt; 0.001 vs. vehicle/MK-801 (0.3 mg/kg)-treated mice) (Fig. <xref rid="Fig6" ref-type="fig">6</xref>Ab).</p><p> Additionally, two-way ANOVA analyses revealed that there was statistically significant effect caused by time [<italic>F</italic>(10.264) = 30.66; <italic>p</italic> &lt; 0.0001], and drugs (MK-801 (0.6 mg/kg) and/or AM 251 (0.5 mg/kg) treatment [<italic>F</italic>(3.264) = 52.22; <italic>p</italic> &lt; 0.0001], but there was no statistically significant effect caused by interactions between time and drugs treatment [<italic>F</italic>(30.264) = 1.49; <italic>p</italic> = 0.0549]. The post hoc Bonferroni’s test confirmed that an acute injection of MK-801 at the dose of 0.6 mg/kg significantly increased locomotor activity of mice between 80 and 200 min of experiment in comparison to the vehicle/vehicle-treated mice (for 80 min of experiments <italic>p</italic> &lt; 0.05, for 100 min <italic>p</italic> &lt; 0.01, for 120–200 min <italic>p</italic> &lt; 0.001). Moreover, this hyperactivity provoked by MK-801 (0.6 g/kg) was attenuated by AM 251 (0.5 mg/kg) between 80 and 200 min of experiment (for 80 min of experiment <italic>p</italic> &lt; 0.05; for 100 min <italic>p</italic> &lt; 0.01, for 120–180 min <italic>p</italic> &lt; 0.001, for 200 min <italic>p</italic> &lt; 0.01) vs. vehicle/MK-801 (0.6 mg/kg)-treated mice) (Fig. <xref rid="Fig6" ref-type="fig">6</xref>Bb).</p></sec></sec><sec id="Sec30" disp-level="1"><title>Discussion</title><p>The correlation between cannabis and psychosis-like effects has been a matter of debate for a long time. Several lines of experimental and clinical evidence point out at a close relationship between endocannabinoid system and schizophrenia (Kucerova et al. <xref rid="CR34" ref-type="bibr">2014</xref>). As we mentioned in Introduction section, CB1 receptor agonists induced memory-related disturbances (Ferrari et al. <xref rid="CR22" ref-type="bibr">1999</xref>; Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>; Kruk-Slomka et al. <xref rid="CR32" ref-type="bibr">2015a</xref>; Pamplona and Takahashi <xref rid="CR49" ref-type="bibr">2006</xref>), whereas antagonists of this type of receptors facilitated memory and learning processes in rodents evaluated in many memory tasks (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>; Kruk-Slomka et al. <xref rid="CR32" ref-type="bibr">2015a</xref>; Lichtman <xref rid="CR39" ref-type="bibr">2000</xref>; Takahashi et al. <xref rid="CR60" ref-type="bibr">2005</xref>; Terranova et al. <xref rid="CR61" ref-type="bibr">1996</xref>). The involvement of the CB1 receptors in psychotic-like effects in animal models of schizophrenia has been also reported. CB1 receptor agonists were able to induce effects typical for schizophrenia; in turn, CB1 receptor antagonists had antipsychotic properties observed in rodents (Barzegar et al. <xref rid="CR8" ref-type="bibr">2015</xref>; Kucerova et al. <xref rid="CR34" ref-type="bibr">2014</xref>; Levin et al. <xref rid="CR36" ref-type="bibr">2012</xref>; Roser and Haussleiter <xref rid="CR55" ref-type="bibr">2012</xref>). For example, behavioral studies have demonstrated that an acute administration of Δ9-tetrahydrocannabinol (Δ9-THC), the major psychoactive component of cannabis, and a CB1 receptor agonist impaired acquisition of memory evaluated in various models of memory in rodents, e.g., the object recognition task or water maze test (Da and Takahashi <xref rid="CR21" ref-type="bibr">2002</xref>; Lichtman et al. <xref rid="CR40" ref-type="bibr">1995</xref>). On the other hand, an acute administration of the CB1 antagonist, e.g., rimonabant improved memory processes in the spatial memory test (Robinson et al. <xref rid="CR53" ref-type="bibr">2010</xref>). Our previous studies have also confirmed that an acute injection of oleamide, a CB1 receptor agonist, impaired the short-term as well as long-term acquisition, consolidation, and/or retrieval of memory and learning in the IA task. In turn, an acute injection of AM 251, a CB1 receptor antagonist, improved all short-term or long-term memory stages mentioned above. Additionally, this memory impairment induced by oleamide was reversed by AM 251 in mice during the IA test, confirming the influence of CB1 receptors (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>).</p><p>Based on the data cited above, the aim of the present research was to evaluate the involvement of the endocannabinoid system, through CB1 receptors, in the symptoms typical for schizophrenia in mice, provoked by an acute injection of NMDA receptor antagonist, MK-801, as an animal model of schizophrenia.</p><p>Previously, many of biochemical, molecular, and pharmacological studies have demonstrated the functional interactions between CB1 and NMDA receptors (Rodríguez-Muñoz et al. <xref rid="CR54" ref-type="bibr">2012</xref>; Sánchez-Blázquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>). For example, MK-801 at the dose of 0.1 mg/kg attenuated the analgesic but not the hypothermic responses to Δ9-THC. Indeed, pretreatment with MK-801 strongly reduced the capacity of cannabinoids to produce analgesia (Palazzo et al. <xref rid="CR48" ref-type="bibr">2001</xref>). What is more, Barzegar et al. (<xref rid="CR8" ref-type="bibr">2015</xref>) have shown that AM 251 prevented the somewhat inhibitory effects of MK-801 on acquisition and retrieval in the PA test. However, the close interactions between CB1 and NMDA receptors in the context of schizophrenia-associated behavior have been evaluated in our presented studies for the first time.</p><p>Our results are conformable with the psychosis-like effects of MK-801 in animals, observed previously. Chadman et al. (<xref rid="CR19" ref-type="bibr">2006</xref>) revealed that the systemic administration of MK-801 (0.1 mg/kg) impaired memory and learning processes in rats during phase of retrieval. However, this low dose of MK-801 was not enough to decrease memory acquisition (Ceretta et al. <xref rid="CR18" ref-type="bibr">2008</xref>). Similarly to these cited data, our studies confirmed that an acute injection of MK-801 (0.1–0.6 mg/kg) was able to impair variety stages (acquisition, consolidation and retrieval) of short- or/and long memory, as well as was able to induce hyperactivity in mice.</p><p>Finally, in the presented studies, we have indicated that an acute injection of CB1 receptor agonist, oleamide (5–20 mg/kg), had no influence on the short- and long-term memory deficits as well as on the hyperlocomotion in mice, provoked by MK-801. The lack of effects of oleamide on the memory impairment or hyperactivity provoked by MK-801 obtained in our experiments may be connected with the fact that oleamide has not been tested yet in details using animal models. Thus, the mechanisms of activity of oleamide remain unknown and are still an area of current research. However, due to the fact that oleamide is structurally related to the endogenous cannabinoid, anandamide, it seems to be able to activate the CB1 receptors as a full agonist, e.g., the memory impairment observed in the IA task (Kruk-Slomka and Biala <xref rid="CR31" ref-type="bibr">2016</xref>). However, any effects induced by oleamide may be associated with the interaction not only with these receptors but also with multiple other neurotransmitter systems and receptors. Thus, more detailed knowledge of this CB compound deserves further investigation.</p><p>What is of interest, we have also indicated that an amnestic effects or hyperlocomotion induced by MK-801 was attenuated by an acute administration of AM 251 (0.25 and 0.5 mg/kg), a CB1 receptor antagonist.</p><p>This strict relationship between endocannabinoid system and schizophrenia-associated effects is connected with many factors, neurotransmitters and receptors. It has been known that endocannabinoid system has a strong impact on the function of many neurotransmitter systems, including those that are involved in the pathophysiology of schizophrenia, e.g., the glutamatergic system. Literature data have shown that endocannabinoid system may have influence especially on the action of NMDA receptor ligands, connecting strictly with psychosis or other schizophrenia-related behavior (Javitt <xref rid="CR28" ref-type="bibr">2007</xref>).</p><p>It has been revealed that cannabinoids use reduced glutamatergic synaptic transmission in several brain regions involved in the regulation of many memory-related functions (Auclair et al. <xref rid="CR6" ref-type="bibr">2000</xref>; Azad et al. <xref rid="CR7" ref-type="bibr">2003</xref>; Fujiwara and Egashira <xref rid="CR23" ref-type="bibr">2004</xref>; Misner and Sullivan <xref rid="CR44" ref-type="bibr">1999</xref>; Robbe et al. <xref rid="CR52" ref-type="bibr">2001</xref>). For example, it has been shown that CB1 receptor knockout mice exhibit enhanced LTP of excitatory synaptic transmission (Bohme et al. <xref rid="CR12" ref-type="bibr">2000</xref>). What is more, CB1 activation, by the administration of synthetic CB1 receptor agonists, reduced LTP and inhibited release of Glu in the hippocampus (Sullivan <xref rid="CR59" ref-type="bibr">2000</xref>). These effects are strongly related to NMDA receptors function, which have been implicated in learning and memory processes (Sánchez-Blázquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>).</p><p>Several studies have also indicated that cannabinoids have influence on the glutamatergic NMDA-related receptors function through various mechanisms, such as the presynaptic reduction of Glu release into the synaptic cleft (Li et al. <xref rid="CR38" ref-type="bibr">2011</xref>) or the inhibition of postsynaptic CB1 receptors, the signaling pathways of which may interfere with those of NMDA receptors (Hampson et al. <xref rid="CR24" ref-type="bibr">2011</xref>; Liu et al. <xref rid="CR41" ref-type="bibr">2009</xref>; Sánchez-Blázquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>). It has been described that the blockade of CB1 receptors by CB1 receptor antagonist, AM 251, produced significant increase in extracellular Glu (Xi et al. <xref rid="CR62" ref-type="bibr">2006</xref>). Consistent with this report, the blockade of LTP by CB1 receptor agonists results from a decrease in the probability of Glu release through presynaptic receptors (Hoffman et al. <xref rid="CR26" ref-type="bibr">2007</xref>; Misner and Sullivan <xref rid="CR44" ref-type="bibr">1999</xref>).</p><p>However, it should be noted that other interactions that may occur between the endocannabinoid and glutamatergic systems could be connected with a different mechanism in which the CB1 receptors directly interact with the NMDA receptors to diminish their activity or cannabinoids may reduce Glu release via some other mechanism, not related with CB1 receptors (Sánchez-Blázquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>).</p><p>In summary, series of biochemical, molecular, pharmacological studies including our presented results have demonstrated functional interactions between the endocannabinoid and glutamatergic systems (Barzegar et al. <xref rid="CR8" ref-type="bibr">2015</xref>; Rodríguez-Muñoz et al. <xref rid="CR54" ref-type="bibr">2012</xref>; Sanchez-Blazquez et al. <xref rid="CR56" ref-type="bibr">2014</xref>). Naturally, the data including those presented in the present manuscript can suggest that CB1 receptor antagonists may have therapeutic properties in schizophrenia or other psychiatric disorders. However, further work is necessary to explain the pharmacological mechanisms on the behavioral level that underlie specific psychosis-related effects induced by CB1 receptor ligands, as well as the mechanism underlying the interactions between CB1 and NMDA receptors.</p></sec><sec id="notes1" disp-level="1"><title>Compliance with Ethical Standards</title><sec id="FPar1" disp-level="2"><title>Conflict of Interest</title><p>The authors declare that they have no conflict of interest.</p></sec><sec id="FPar2" disp-level="2"><title>Ethical approval</title><p>All applicable international, national, and/or institutional guidelines for the care and use of animals were followed. All experiments were conducted according to the National Institute of Health Guidelines for the Care and Use of Laboratory Animals and to the European Community Council Directive for the Care and Use of laboratory animals of 22 September 2010 (2010/63/EU), and approved by the local ethics committee. All procedures performed in studies involving animals were in accordance with the ethical standards of the institution or practice at which the studies were conducted.</p></sec><sec id="FPar3" disp-level="2"><title>Informed consent</title><p>Informed consent was obtained from all individual participants included in the study. 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