| Literature DB >> 32882918 |
Hélène Le Ribeuz1,2,3, Véronique Capuano1,2,3, Barbara Girerd1,2,3, Marc Humbert1,2,3, David Montani1,2,3, Fabrice Antigny1,2,3.
Abstract
Pulmonary arterial hypertension (Entities:
Keywords: ABCC8; ABCC9; K2P3.1; KCNA5; KCNK3; Kv1.5; SUR1; SUR2
Year: 2020 PMID: 32882918 PMCID: PMC7564204 DOI: 10.3390/biom10091261
Source DB: PubMed Journal: Biomolecules ISSN: 2218-273X
Figure 1General molecular architecture of two pore potassium channels (K2P). TMD: Transmembrane domain.
Figure 2Schematic representation of pathways implicated in K+ regulation in pulmonary artery smooth muscle cells in the context of pulmonary arterial hypertension (PAH). [Ca2+]cyt, cytoplasmic calcium concentration; [K+]cyt, cytoplasmic potassium concentration; 5-HTR, serotonin receptor; AT1-R, angiotensin 1 receptor; BMPRI, BMP receptor type I; BMPRII, BMP receptor type II; cAMP, cyclic adenosine monophosphate; cGMP, cyclic guanosine monophosphate; DAG, diacylglycerol; Em, membrane resting potential; ET-R, endothelin receptor; IP3, inositol-1,4,5-triphosphate; MAPK, mitogen-activated protein kinases; PIP2, phosphatidylinositol-4,5-biphosphate; PKA, protein kinase A; PKC, protein kinase C; PKG, protein kinase G; PLC, phospholipase C; SMAD, mothers against decapentaplegic homologue; SrcTK, Src family tyrosine kinase; TXA2R, thromboxan A2 receptor.
Figure 3Topological analysis of the human KCNK3/TASK-1 channel. Positions indicate the mutations identified by Ma et al. [50], Navas et al. [51], Zhang [53], and Haarman [54].
Potassium channel subfamily K member 3 (KCNK3) mutations identified in PAH patients and their consequences for the KCNK3/TASK-1 channel function.
| KCNK3 Mutation (AA) | KCNK3 Mutation (Nucleic Acid) | Number of PAH Patients Carrying the Mutation | Number of Healthy Carrier | Zygosity | Function (Patch Clamp) | Function Restored by ONO-RS-082 | References |
|---|---|---|---|---|---|---|---|
| T8K | 1 | Heterozygous | loss | yes | [ | ||
| G97R | 289 G > A | 2 | 1 | Heterozygous | loss | / | [ |
| G106R | 316 G > C | 2 | 1 | Heterozygous and homozygous | loss | no | [ |
| A114V | 341C > T | 1 | Heterozygous | / | / | [ | |
| K145M | 434 A > T | 1 | Heterozygous | / | / | [ | |
| E182K | 1 | Heterozygous | loss | yes | [ | ||
| A189T | 565 G > A | 1 | Heterozygous | / | / | [ | |
| Y192C | 1 | Heterozygous | loss | / | [ | ||
| G203D | 608 G > A | 6 | 1 | Heterozygous | loss | no | [ |
| V206L | 616 G > T | 1 | Heterozygous | / | / | [ | |
| L214R | 641 T > G | 1 | Heterozygous | loss | no | [ | |
| V221L | 661 G > C | 1 | Heterozygous | loss | / | [ |
Figure 4General molecular architecture of ATP-sensitive potassium channels (KATP) channels. The KATP form in a hetero-octameric conformation is composed of four inward-rectifier-K+ channel subunits (Kir6.x), which represent the pore forming subunits, and four regulatory subunits (Sur.x, sulfonylurea receptor). There are two types of Kir 6.x subunits (Kir6.1 and Kir6.2) and two types of Sur.x subunits (SUR1 and SUR2), and there are two splice variants of SUR2 (SUR2A and SUR2B). KATP subunits co-assemble in different manners, depending on the tissue type. TMD: Transmembrane domain. NBD: Nucleotide binding domain.
Figure 5Topological analysis of the human ATP-binding cassette subfamily C member 8 (ABCC8)/sulfonylurea receptor 1 (SUR1) channel. Positions indicate the mutations identified by Bohnen M et al. [79].
ABCC8 mutations identified in PAH patients and their consequences for the Sur1/Kir6.2 channel function.
| Number of PAH Patients Carrying the Mutation | Zygosity | Function | Function Restored by Diazoxide | |||
|---|---|---|---|---|---|---|
| (Patch Clamp) | (Rubidium (86Rb+) Efflux Assays) | |||||
| N72D | 214 A > G | 1 | Heterozygous | / | / | / |
| G111R | 331 G > A | 1 | Heterozygous | / | / | / |
| L135V | 403 C > G | 1 | Heterozygous | loss | decrease | yes |
| E186D | 558 G > T | 1 | Heterozygous | loss | not decrease | yes |
| T229I | 686 C > T | 1 | Heterozygous | / | / | / |
| A240T | 718 G > A | 1 | Heterozygous | loss | decrease | yes |
| E791Q | 2371 G > C | 1 | Heterozygous | loss | small decrease | yes |
| D813N | 2437 G > A | 1 | Heterozygous | loss | decrease | yes |
| R958H | 2873 G > A | 1 | Heterozygous | not loss | decrease | yes |
| R1314H | 3941 G > A | 1 | Heterozygous | loss | small decrease | yes |
| D1472N | 4414 G > A | 1 | Heterozygous | loss | decrease | yes |
| / | 2694 T > 2G | 1 | Heterozygous | / | / | / |
Figure 6General molecular architecture of voltage-gated K+ channels (Kv channels). Kv channels are comprised of a voltage sensor domain (VSD), which detects changes in the transmembrane voltage, and a pore domain (PD). The VSD and PD are comprised of six transmembrane domains. Kv channels are also comprised of a β subunit. Kv channels form as homo- or heterotetramers composed of four α subunits and four β subunits.