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Author
- Tian, Yun4
- Wang, Jin4
- Fan, Ying-Zhe3
- Guo, Chang-Run3
- Cheng, Xiao-Yang2
- Liang, Hong2
- Liu, Yan2
- Ma, Xue-Fei2
- Sun, Liang-Fei2
- Wang, Heng-Shan2
- Yang, Xiao-Na2
- Yang, Yang2
- Chen, Ping-Fang1
- Guan, Li1
- Hattori, Motoyuki1
- Hu, You-Min1
- Huang, Li-Dong1
- Lei, Yun-Tao1
- Li, Changzhu1
- Li, Peiwang1
- Li, Xing-Hua1
- Lu, Xiang-Yang1
- Niu, You-Ya1
Keyword
- gating2
- ion channel2
- molecular dynamics2
- purinergic receptor2
- 2-guanidine-4-methylquinazoline (GMQ)1
- acid-sensing ion channels (ASIC)1
- allosteric regulation1
- AmP2X1
- ATP-evoked current1
- ATP-gated ion channel1
- channel gating1
- chicken (Gallus gallus domesticus) P2X71
- ckP2X71
- conformational change1
- FMRFamide (Phe-Met-Arg-Phe-NH2) peptides1
- FMRFamide peptide-gated sodium channel (FaNaC)1
- HEK2931
- HRP1
- LF domain1
- MD1
- P2X5 receptors1
- P2X7 receptors1
- PDB1
- Protein Data Bank1
- RSSF1
Molecular Biophysics
4 Results
- Research ArticleOpen Access
The long β2,3-sheets encoded by redundant sequences play an integral role in the channel function of P2X7 receptors
Journal of Biological ChemistryVol. 298Issue 6102002Published online: April 29, 2022- Xue-Fei Ma
- Ting-Ting Wang
- Wen-Hui Wang
- Li Guan
- Chang-Run Guo
- Xing-Hua Li
- and others
Cited in Scopus: 0P2X receptors are a class of nonselective cation channels widely distributed in the immune and nervous systems, and their dysfunction is a significant cause of tumors, inflammation, leukemia, and immune diseases. P2X7 is a unique member of the P2X receptor family with many properties that differ from other subtypes in terms of primary sequence, the architecture of N- and C-terminals, and channel function. Here, we suggest that the observed lengthened β2- and β3-sheets and their linker (loop β2,3), encoded by redundant sequences, play an indispensable role in the activation of the P2X7 receptor. - Research ArticleOpen Access
A conserved residue in the P2X4 receptor has a nonconserved function in ATP recognition
Journal of Biological ChemistryVol. 296100655Published online: April 22, 2021- Ping-Fang Chen
- Xue-Fei Ma
- Liang-Fei Sun
- Yun Tian
- Ying-Zhe Fan
- Peiwang Li
- and others
Cited in Scopus: 1Highly conserved amino acids are generally anticipated to have similar functions across a protein superfamily, including that of the P2X ion channels, which are gated by extracellular ATP. However, whether and how these functions are conserved becomes less clear when neighboring amino acids are not conserved. Here, we investigate one such case, focused on the highly conserved residue from P2X4, E118 (rat P2X4 numbering, rP2X4), a P2X subtype associated with human neuropathic pain. When we compared the crystal structures of P2X4 with those of other P2X subtypes, including P2X3, P2X7, and AmP2X, we observed a slightly altered side-chain orientation of E118. - ArticleOpen Access
Altered allostery of the left flipper domain underlies the weak ATP response of rat P2X5 receptors
Journal of Biological ChemistryVol. 294Issue 51p19589–19603Published online: November 14, 2019- Liang-Fei Sun
- Yan Liu
- Jin Wang
- Li-Dong Huang
- Yang Yang
- Xiao-Yang Cheng
- and others
Cited in Scopus: 7Although the extracellular ATP-gated cation channel purinergic receptor P2X5 is widely expressed in heart, skeletal muscle, and immune and nervous systems in mammals, little is known about its functions and channel-gating activities. This lack of knowledge is due to P2X5’s weak ATP responses in several mammalian species, such as humans, rats, and mice. WT human P2X5 (hP2X5Δ328–349) does not respond to ATP, whereas a full-length variant, hP2X5 (hP2X5-FL), containing exon 10 encoding the second hP2X5 transmembrane domain (TM2), does. - Membrane BiologyOpen Access
The nonproton ligand of acid-sensing ion channel 3 activates mollusk-specific FaNaC channels via a mechanism independent of the native FMRFamide peptide
Journal of Biological ChemistryVol. 292Issue 52p21662–21675Published online: November 9, 2017- Xiao-Na Yang
- You-Ya Niu
- Yan Liu
- Yang Yang
- Jin Wang
- Xiao-Yang Cheng
- and others
Cited in Scopus: 10The degenerin/epithelial sodium channel (DEG/ENaC) superfamily of ion channels contains subfamilies with diverse functions that are fundamental to many physiological and pathological processes, ranging from synaptic transmission to epileptogenesis. The absence in mammals of some DEG/ENaCs subfamily orthologues such as FMRFamide peptide–activated sodium channels (FaNaCs), which have been identified only in mollusks, indicates that the various subfamilies diverged early in evolution. We recently reported that the nonproton agonist 2-guanidine-4-methylquinazoline (GMQ) activates acid-sensing ion channels (ASICs), a DEG/ENaC subfamily mainly in mammals, in the absence of acidosis.