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PDBsum entry 1p6h

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protein ligands metals Protein-protein interface(s) links
Oxidoreductase PDB id
1p6h

 

 

 

 

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Contents
Protein chains
407 a.a. *
Ligands
ACT ×2
HEM ×2
H4B ×2
DP1 ×2
Metals
_ZN
Waters ×487
* Residue conservation analysis
PDB id:
1p6h
Name: Oxidoreductase
Title: Rat neuronal nos heme domain with l-n(omega)-nitroarginine-2,4-l- diaminobutyric amide bound
Structure: Nitric-oxide synthase, brain. Chain: a, b. Fragment: nos heme domain. Synonym: nos, type i, neuronal nos, n-nos, nnos, constitutive nos, nc-nos, bnos. Engineered: yes
Source: Rattus norvegicus. Norway rat. Organism_taxid: 10116. Expressed in: escherichia coli bl21(de3). Expression_system_taxid: 469008.
Biol. unit: Dimer (from PQS)
Resolution:
1.98Å     R-factor:   0.231     R-free:   0.273
Authors: M.L.Flinspach,H.Li,J.Jamal,W.Yang,H.Huang,J.-M.Hah,J.A.Gomez-Vidal, E.A.Litzinger,R.B.Silverman,T.L.Poulos
Key ref:
M.L.Flinspach et al. (2004). Structural basis for dipeptide amide isoform-selective inhibition of neuronal nitric oxide synthase. Nat Struct Mol Biol, 11, 54-59. PubMed id: 14718923 DOI: 10.1038/nsmb704
Date:
29-Apr-03     Release date:   13-Jan-04    
PROCHECK
Go to PROCHECK summary
 Headers
 References

Protein chains
Pfam   ArchSchema ?
P29476  (NOS1_RAT) -  Nitric oxide synthase 1 from Rattus norvegicus
Seq:
Struc:
 
Seq:
Struc:
 
Seq:
Struc:
1429 a.a.
407 a.a.
Key:    PfamA domain  Secondary structure  CATH domain

 Enzyme reactions 
   Enzyme class: E.C.1.14.13.39  - nitric-oxide synthase (NADPH).
[IntEnz]   [ExPASy]   [KEGG]   [BRENDA]
      Reaction: 2 L-arginine + 3 NADPH + 4 O2 + H+ = 2 L-citrulline + 2 nitric oxide + 3 NADP+ + 4 H2O
2 × L-arginine
+
3 × NADPH
Bound ligand (Het Group name = DP1)
matches with 47.83% similarity
+ 4 × O2
+ H(+)
= 2 × L-citrulline
+ 2 × nitric oxide
+ 3 × NADP(+)
+ 4 × H2O
Molecule diagrams generated from .mol files obtained from the KEGG ftp site

 

 
    reference    
 
 
DOI no: 10.1038/nsmb704 Nat Struct Mol Biol 11:54-59 (2004)
PubMed id: 14718923  
 
 
Structural basis for dipeptide amide isoform-selective inhibition of neuronal nitric oxide synthase.
M.L.Flinspach, H.Li, J.Jamal, W.Yang, H.Huang, J.M.Hah, J.A.Gómez-Vidal, E.A.Litzinger, R.B.Silverman, T.L.Poulos.
 
  ABSTRACT  
 
Three nitric oxide synthase (NOS) isoforms, eNOS, nNOS and iNOS, generate nitric oxide (NO) crucial to the cardiovascular, nervous and host defense systems, respectively. Development of isoform-selective NOS inhibitors is of considerable therapeutic importance. Crystal structures of nNOS-selective dipeptide inhibitors in complex with both nNOS and eNOS were solved and the inhibitors were found to adopt a curled conformation in nNOS but an extended conformation in eNOS. We hypothesized that a single-residue difference in the active site, Asp597 (nNOS) versus Asn368 (eNOS), is responsible for the favored binding in nNOS. In the D597N nNOS mutant crystal structure, a bound inhibitor switches to the extended conformation and its inhibition of nNOS decreases >200-fold. Therefore, a single-residue difference is responsible for more than two orders of magnitude selectivity in inhibition of nNOS over eNOS by L-N(omega)-nitroarginine-containing dipeptide inhibitors.
 
  Selected figure(s)  
 
Figure 1.
Figure 1. Ribbon diagram of the eNOS heme domain, the active site and the dipeptide inhibitors used in this study. (a) Chemical structures of the three dipeptide amide or peptidomimetic NOS inhibitors used in this study: I, L-N^ -nitroarginine-2,4- L-diaminobutyramide; II (4S)-N-(4-amino-5-[aminoethyl]aminopentyl)-N'-nitroguanidine; III, L-N^ -nitroarginine-(4R)-amino-L-proline amide. (b) Ribbon diagram of eNOS heme domain. All three isoforms share the similar dimeric fold and have a wide open solvent-accessible channel connecting the heme active site to the molecular surface. (c) L-NNA bound in the active site of eNOS. The extensive hydrogen bonding network (dashed lines) between L-NNA and enzyme may explain its low-nanomolar potency. The active site structure and interactions between L-arginine and the protein are the same in all three mammalian NOS isoforms. The only exception is Asn368, which is aspartate in nNOS and iNOS. Even so, the aspartate and asparagine side chains are oriented in the same way in all three structures.
Figure 4.
Figure 4. Stereo diagrams of the F[o] - F[c] omit electron density maps contoured at 3 of inhibitor I binding. (a,b) Inhibitor I bound to nNOS D597N mutant (a) and eNOS N368D mutant (b). In b, the curled binding mode was observed at 70% occupancy, with the wild-type binding mode present at 30% (data not shown). Occupancies were empirically determined by adjusting occupancies of the two alternate conformations until F[o] - F[c] electron density maps indicated no further changes were required. For nNOS only one conformation was observed.
 
  The above figures are reprinted by permission from Macmillan Publishers Ltd: Nat Struct Mol Biol (2004, 11, 54-59) copyright 2004.  
  Figures were selected by an automated process.  

Literature references that cite this PDB file's key reference

  PubMed id Reference
19081984 B.L.Oliveira, J.D.Correia, P.D.Raposinho, I.Santos, A.Ferreira, C.Cordeiro, and A.P.Freire (2009).
Re and (99m)Tc organometallic complexes containing pendant l-arginine derivatives as potential probes of inducible nitric oxide synthase.
  Dalton Trans, (), 152-162.  
19125620 H.Ji, H.Li, P.Martásek, L.J.Roman, T.L.Poulos, and R.B.Silverman (2009).
Discovery of highly potent and selective inhibitors of neuronal nitric oxide synthase by fragment hopping.
  J Med Chem, 52, 779-797.  
19235180 H.Ji, S.Tan, J.Igarashi, H.Li, M.Derrick, P.Martásek, L.J.Roman, J.Vásquez-Vivar, T.L.Poulos, and R.B.Silverman (2009).
Selective neuronal nitric oxide synthase inhibitors and the prevention of cerebral palsy.
  Ann Neurol, 65, 209-217.  
19154146 R.B.Silverman (2009).
Design of selective neuronal nitric oxide synthase inhibitors for the prevention and treatment of neurodegenerative diseases.
  Acc Chem Res, 42, 439-451.  
18849972 E.D.Garcin, A.S.Arvai, R.J.Rosenfeld, M.D.Kroeger, B.R.Crane, G.Andersson, G.Andrews, P.J.Hamley, P.R.Mallinder, D.J.Nicholls, S.A.St-Gallay, A.C.Tinker, N.P.Gensmantel, A.Mete, D.R.Cheshire, S.Connolly, D.J.Stuehr, A.Aberg, A.V.Wallace, J.A.Tainer, and E.D.Getzoff (2008).
Anchored plasticity opens doors for selective inhibitor design in nitric oxide synthase.
  Nat Chem Biol, 4, 700-707.
PDB codes: 3e65 3e67 3e68 3e6l 3e6n 3e6o 3e6t 3e7g 3e7i 3e7m 3e7s 3e7t 3eah 3eai 3ebd 3ebf 3ej8
18321097 H.Ji, B.Z.Stanton, J.Igarashi, H.Li, P.Martásek, L.J.Roman, T.L.Poulos, and R.B.Silverman (2008).
Minimal pharmacophoric elements and fragment hopping, an approach directed at molecular diversity and isozyme selectivity. Design of selective neuronal nitric oxide synthase inhibitors.
  J Am Chem Soc, 130, 3900-3914.
PDB codes: 3b3m 3b3n
  19052659 S.Suman, R.K.Seth, and S.Chandna (2008).
Role of nitric oxide synthase in insect cell radioresistance: an in-silico analysis.
  Bioinformation, 3, 8.  
17614291 E.P.Erdal, P.Martásek, L.J.Roman, and R.B.Silverman (2007).
Hydroxyethylene isosteres of selective neuronal nitric oxide synthase inhibitors.
  Bioorg Med Chem, 15, 6096-6108.  
17425297 J.Seo, J.Igarashi, H.Li, P.Martasek, L.J.Roman, T.L.Poulos, and R.B.Silverman (2007).
Structure-based design and synthesis of N(omega)-nitro-L-arginine-containing peptidomimetics as selective inhibitors of neuronal nitric oxide synthase. Displacement of the heme structural water.
  J Med Chem, 50, 2089-2099.
PDB codes: 2hx2 2hx3 2hx4
16480878 B.N.Mbadugha, J.Seo, H.Ji, P.Martásek, L.J.Roman, T.M.Shea, H.Li, T.L.Poulos, and R.B.Silverman (2006).
Hydroxyl-terminated peptidomimetic inhibitors of neuronal nitric oxide synthase.
  Bioorg Med Chem, 14, 3681-3690.  
17034131 H.Ji, J.A.Gómez-Vidal, P.Martasek, L.J.Roman, and R.B.Silverman (2006).
Conformationally restricted dipeptide amides as potent and selective neuronal nitric oxide synthase inhibitors.
  J Med Chem, 49, 6254-6263.  
16804678 H.Li, J.Igarashi, J.Jamal, W.Yang, and T.L.Poulos (2006).
Structural studies of constitutive nitric oxide synthases with diatomic ligands bound.
  J Biol Inorg Chem, 11, 753-768.
PDB codes: 2g6h 2g6i 2g6j 2g6k 2g6l 2g6m 2g6n 2g6o
16791086 T.H.Chu, and W.T.Wu (2006).
Nitric oxide synthase inhibitor attenuates number of regenerating spinal motoneurons in adult rats.
  Neuroreport, 17, 969-973.  
15574418 A.J.Cardounel, Y.Xia, and J.L.Zweier (2005).
Endogenous methylarginines modulate superoxide as well as nitric oxide generation from neuronal nitric-oxide synthase: differences in the effects of monomethyl- and dimethylarginines in the presence and absence of tetrahydrobiopterin.
  J Biol Chem, 280, 7540-7549.  
The most recent references are shown first. Citation data come partly from CiteXplore and partly from an automated harvesting procedure. Note that this is likely to be only a partial list as not all journals are covered by either method. However, we are continually building up the citation data so more and more references will be included with time. Where a reference describes a PDB structure, the PDB codes are shown on the right.

 

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