 |
PDBsum entry 3ij4
|
|
|
|
 |
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
 |
|
|
|
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
|
|
|
|
|
|
|
|
|
|
Transport protein
|
PDB id
|
|
|
|
3ij4
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
|
 |
Contents |
 |
|
|
|
|
|
|
|
|
|
|
|
* Residue conservation analysis
|
|
|
|
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
 |
|
|
|
| |
|
DOI no:
|
Nature
460:599-604
(2009)
|
|
PubMed id:
|
|
|
|
|
| |
|
Pore architecture and ion sites in acid-sensing ion channels and P2X receptors.
|
|
E.B.Gonzales,
T.Kawate,
E.Gouaux.
|
|
|
|
| |
ABSTRACT
|
|
|
| |
|
Acid-sensing ion channels are proton-activated, sodium-selective channels
composed of three subunits, and are members of the superfamily of epithelial
sodium channels, mechanosensitive and FMRF-amide peptide-gated ion channels.
These ubiquitous eukaryotic ion channels have essential roles in biological
activities as diverse as sodium homeostasis, taste and pain. Despite their
crucial roles in biology and their unusual trimeric subunit stoichiometry, there
is little knowledge of the structural and chemical principles underlying their
ion channel architecture and ion-binding sites. Here we present the structure of
a functional acid-sensing ion channel in a desensitized state at 3 A resolution,
the location and composition of the approximately 8 A 'thick' desensitization
gate, and the trigonal antiprism coordination of caesium ions bound in the
extracellular vestibule. Comparison of the acid-sensing ion channel structure
with the ATP-gated P2X(4) receptor reveals similarity in pore architecture and
aqueous vestibules, suggesting that there are unanticipated yet common
structural and mechanistic principles.
|
|
|
|
|
| |
Selected figure(s)
|
|
|
| |
 |
 |
|
 |
|
 |
Figure 2.
Figure 2: Structure of ASIC1mfc. a, View of the functional
ASIC1mfc trimer. Chloride ions are green spheres. The 'thumb',
'finger' and wrist regions are labelled. Grey bars suggest the
boundaries of the outer (out) and inner (in) leaflets of the
membrane bilayer. b, A vertical slice through a
solvent-accessible surface representation of the transmembrane
domain, the extracellular vestibule and fenestrations. One of
the three equivalent fenestrations is indicated by an arrow. Asp
433 defines the bottom of the extracellular vestibule. c, Key
interactions between symmetry-related Asp 433 carboxyl and Tyr
425 hydroxyl groups.
|
 |
Figure 4.
Figure 4: Cs^+-binding sites. a, Stereo image of the electron
density peaks (3.5 )
from anomalous difference Fourier maps calculated using
diffraction data measured from crystals soaked in CsCl. b, Key
interactions between Cs^+ ions at sites 1 and 2 with the
main-chain and side-chain oxygen atoms of Gly 432 and Asp 433,
respectively. c, Stick representation of ASIC1mfc interaction
with Cs^+ at site 2. d, Trigonal antiprism coordination of the
Cs^+ ion by the Gly 432 carbonyl and Asp 433 carboxyl oxygens.
Oxygen atoms (red spheres) form the vertices, whereas solid
lines represent the sides of each of the two staggered triangles
of the antiprism.
|
 |
|
|
|
| |
The above figures are
reprinted
by permission from Macmillan Publishers Ltd:
Nature
(2009,
460,
599-604)
copyright 2009.
|
|
| |
Figures were
selected
by an automated process.
|
|
|
|
|
 |
 |
|
 |
 |
 |
 |
 |
 |
 |
 |
 |
|
Literature references that cite this PDB file's key reference
|
|
 |
| |
PubMed id
|
 |
Reference
|
 |
|
|
|
 |
I.Baconguis,
and
E.Gouaux
(2012).
Structural plasticity and dynamic selectivity of acid-sensing ion channel-spider toxin complexes.
|
| |
Nature,
489,
400-405.
|
 |
|
PDB codes:
|
 |
|
|
|
|
|
 |
W.C.Lau,
and
J.L.Rubinstein
(2012).
Subnanometre-resolution structure of the intact Thermus thermophilus H+-driven ATP synthase.
|
| |
Nature,
481,
214-218.
|
 |
|
PDB code:
|
 |
|
|
|
|
|
 |
A.F.Knowles
(2011).
The GDA1_CD39 superfamily: NTPDases with diverse functions.
|
| |
Purinergic Signal,
7,
21-45.
|
 |
|
|
|
|
 |
M.G.Blanchard,
and
S.Kellenberger
(2011).
Effect of a temperature increase in the non-noxious range on proton-evoked ASIC and TRPV1 activity.
|
| |
Pflugers Arch,
461,
123-139.
|
 |
|
|
|
|
 |
T.Li,
Y.Yang,
and
C.M.Canessa
(2011).
Asp433 in the closing gate of ASIC1 determines stability of the open state without changing properties of the selectivity filter or Ca2+ block.
|
| |
J Gen Physiol,
137,
289-297.
|
 |
|
|
|
|
 |
V.Kucher,
N.Boiko,
O.Pochynyuk,
and
J.D.Stockand
(2011).
Voltage-dependent gating underlies loss of ENaC function in Pseudohypoaldosteronism type 1.
|
| |
Biophys J,
100,
1930-1939.
|
 |
|
|
|
|
 |
G.Burnstock,
and
A.Verkhratsky
(2010).
Long-term (trophic) purinergic signalling: purinoceptors control cell proliferation, differentiation and death.
|
| |
Cell Death Dis,
1,
e9.
|
 |
|
|
|
|
 |
J.K.Lee,
and
R.M.Stroud
(2010).
Unlocking the eukaryotic membrane protein structural proteome.
|
| |
Curr Opin Struct Biol,
20,
464-470.
|
 |
|
|
|
|
 |
J.M.Hsieh,
G.M.Besserer,
M.G.Madej,
H.Q.Bui,
S.Kwon,
and
J.Abramson
(2010).
Bridging the gap: a GFP-based strategy for overexpression and purification of membrane proteins with intra and extracellular C-termini.
|
| |
Protein Sci,
19,
868-880.
|
 |
|
|
|
|
 |
K.R.Vinothkumar,
and
R.Henderson
(2010).
Structures of membrane proteins.
|
| |
Q Rev Biophys,
43,
65.
|
 |
|
|
|
|
 |
L.A.Liechti,
S.Bernèche,
B.Bargeton,
J.Iwaszkiewicz,
S.Roy,
O.Michielin,
and
S.Kellenberger
(2010).
A combined computational and functional approach identifies new residues involved in pH-dependent gating of ASIC1a.
|
| |
J Biol Chem,
285,
16315-16329.
|
 |
|
|
|
|
 |
L.E.Browne,
L.H.Jiang,
and
R.A.North
(2010).
New structure enlivens interest in P2X receptors.
|
| |
Trends Pharmacol Sci,
31,
229-237.
|
 |
|
|
|
|
 |
M.Li,
T.Kawate,
S.D.Silberberg,
and
K.J.Swartz
(2010).
Pore-opening mechanism in trimeric P2X receptor channels.
|
| |
Nat Commun,
1,
1-7.
|
 |
|
|
|
|
 |
M.T.Young
(2010).
P2X receptors: dawn of the post-structure era.
|
| |
Trends Biochem Sci,
35,
83-90.
|
 |
|
|
|
|
 |
R.Gessmann,
N.Kourtis,
K.Petratos,
and
N.Tavernarakis
(2010).
Molecular modeling of mechanosensory ion channel structural and functional features.
|
| |
PLoS One,
5,
e12814.
|
 |
|
|
|
|
 |
R.J.Evans
(2010).
Structural interpretation of P2X receptor mutagenesis studies on drug action.
|
| |
Br J Pharmacol,
161,
961-971.
|
 |
|
|
|
|
 |
R.Rauh,
A.Diakov,
A.Tzschoppe,
J.Korbmacher,
A.K.Azad,
H.Cuppens,
J.J.Cassiman,
J.Dötsch,
H.Sticht,
and
C.Korbmacher
(2010).
A mutation of the epithelial sodium channel associated with atypical cystic fibrosis increases channel open probability and reduces Na+ self inhibition.
|
| |
J Physiol,
588,
1211-1225.
|
 |
|
|
|
|
 |
S.Dürrnagel,
A.Kuhn,
C.D.Tsiairis,
M.Williamson,
H.Kalbacher,
C.J.Grimmelikhuijzen,
T.W.Holstein,
and
S.Gründer
(2010).
Three homologous subunits form a high affinity peptide-gated ion channel in Hydra.
|
| |
J Biol Chem,
285,
11958-11965.
|
 |
|
|
|
|
 |
S.Gründer,
and
X.Chen
(2010).
Structure, function, and pharmacology of acid-sensing ion channels (ASICs): focus on ASIC1a.
|
| |
Int J Physiol Pathophysiol Pharmacol,
2,
73-94.
|
 |
|
|
|
|
 |
S.Kracun,
V.Chaptal,
J.Abramson,
and
B.S.Khakh
(2010).
Gated access to the pore of a P2X receptor: structural implications for closed-open transitions.
|
| |
J Biol Chem,
285,
10110-10121.
|
 |
|
|
|
|
 |
T.M.Buck,
A.R.Kolb,
C.R.Boyd,
T.R.Kleyman,
and
J.L.Brodsky
(2010).
The endoplasmic reticulum-associated degradation of the epithelial sodium channel requires a unique complement of molecular chaperones.
|
| |
Mol Biol Cell,
21,
1047-1058.
|
 |
|
|
|
|
 |
Y.J.Qadri,
Y.Song,
C.M.Fuller,
and
D.J.Benos
(2010).
Amiloride docking to acid-sensing ion channel-1.
|
| |
J Biol Chem,
285,
9627-9635.
|
 |
|
|
|
|
 |
Y.Kodani,
and
Y.Furukawa
(2010).
Position 552 in a FMRFamide-gated Na(+) channel affects the gating properties and the potency of FMRFamide.
|
| |
Zoolog Sci,
27,
440-448.
|
 |
|
|
|
|
 |
Y.Shafrir,
S.Durell,
N.Arispe,
and
H.R.Guy
(2010).
Models of membrane-bound Alzheimer's Abeta peptide assemblies.
|
| |
Proteins,
78,
3473-3487.
|
 |
|
|
|
|
 |
M.Freigassner,
H.Pichler,
and
A.Glieder
(2009).
wTuning microbial hosts for membrane protein production.
|
| |
Microb Cell Fact,
8,
69.
|
 |
|
|
|
|
 |
M.Salinas,
M.Lazdunski,
and
E.Lingueglia
(2009).
Structural elements for the generation of sustained currents by the acid pain sensor ASIC3.
|
| |
J Biol Chem,
284,
31851-31859.
|
 |
|
|
|
|
 |
S.D.Silberberg,
and
K.J.Swartz
(2009).
Structural biology: Trimeric ion-channel design.
|
| |
Nature,
460,
580-581.
|
 |
|
 |
 |
|
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.
|
');
}
}
 |