7PGB image
Deposition Date 2021-08-13
Release Date 2022-06-08
Last Version Date 2024-11-20
Entry Detail
PDB ID:
7PGB
Title:
NaV_Ae1/Sp1CTD_pore-SAT09 complex
Biological Source:
Method Details:
Experimental Method:
Resolution:
3.60 Å
R-Value Free:
0.23
R-Value Work:
0.20
R-Value Observed:
0.20
Space Group:
P 43
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:SAT09 fab fragment, heavy chain
Chain IDs:A (auth: H), D (auth: A), G (auth: R), J (auth: U), M (auth: X), P (auth: a), S (auth: m), V (auth: p), Y (auth: f), AA (auth: i)
Chain Length:234
Number of Molecules:10
Biological Source:Homo sapiens
Polymer Type:polypeptide(L)
Molecule:SAT09 fab fragment, light chain
Chain IDs:B (auth: L), E (auth: B), H (auth: S), K (auth: V), N (auth: Y), Q (auth: b), T (auth: n), W (auth: q), Z (auth: g), BA (auth: k)
Chain Length:215
Number of Molecules:10
Biological Source:Homo sapiens
Protein Blast
Polymer Type:polypeptide(L)
Molecule:Ion transport protein,Voltage-gated sodium channel
Gene (Uniprot):SPO0030, Mlg_0322
Chain IDs:C (auth: c), F (auth: C), I (auth: T), L (auth: W), O (auth: Z), R (auth: d), U (auth: l), X (auth: o), CA (auth: h), DA (auth: e)
Chain Length:143
Number of Molecules:10
Biological Source:Alkalilimnicola ehrlichii (strain ATCC BAA-1101 / DSM 17681 / MLHE-1), Ruegeria pomeroyi (strain ATCC 700808 / DSM 15171 / DSS-3)
Primary Citation
Quaternary structure independent folding of voltage-gated ion channel pore domain subunits.
Nat.Struct.Mol.Biol. 29 537 548 (2022)
PMID: 35655098 DOI: 10.1038/s41594-022-00775-x

Abstact

Every voltage-gated ion channel (VGIC) has a pore domain (PD) made from four subunits, each comprising an antiparallel transmembrane helix pair bridged by a loop. The extent to which PD subunit structure requires quaternary interactions is unclear. Here, we present crystal structures of a set of bacterial voltage-gated sodium channel (BacNaV) 'pore only' proteins that reveal a surprising collection of non-canonical quaternary arrangements in which the PD tertiary structure is maintained. This context-independent structural robustness, supported by molecular dynamics simulations, indicates that VGIC-PD tertiary structure is independent of quaternary interactions. This fold occurs throughout the VGIC superfamily and in diverse transmembrane and soluble proteins. Strikingly, characterization of PD subunit-binding Fabs indicates that non-canonical quaternary PD conformations can occur in full-length VGICs. Together, our data demonstrate that the VGIC-PD is an autonomously folded unit. This property has implications for VGIC biogenesis, understanding functional states, de novo channel design, and VGIC structural origins.

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