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Author
- Tian, Yun3
- Wang, Jin3
- Cheng, Xiao-Yang2
- Fan, Ying-Zhe2
- Guo, Chang-Run2
- Huang, Li-Dong2
- Liu, Yan2
- Ma, Xue-Fei2
- Sun, Liang-Fei2
- Yang, Yang2
- Zhu, Michael X2
- Cui, Wen-Wen1
- Guan, Li1
- Hattori, Motoyuki1
- Hu, You-Min1
- Lei, Yun-Tao1
- Li, Bin1
- Li, Lingyong1
- Li, Xing-Hua1
- Liang, Hong1
- Lu, Xiang-Yang1
- Nureki, Osamu1
- Wang, Heng-Shan1
- Wang, Ting-Ting1
Keyword
- conformational change2
- allosteric regulation1
- ATP-evoked current1
- ATP-gated ion channel1
- horseradish peroxidase1
- HRP1
- ion channel1
- left flipper domain1
- LF domain1
- ligand-gated ion channel1
- molecular dynamics1
- molecular simulations1
- P2X receptors1
- P2X5 receptors1
- P2X7 receptors1
- physical couplings1
- protein domain1
- protein expression1
- protein structure1
- purinergic receptor1
- receptor structure-function1
- single channel recording1
Molecular Biophysics
3 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. - 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
Intersubunit physical couplings fostered by the left flipper domain facilitate channel opening of P2X4 receptors
Journal of Biological ChemistryVol. 292Issue 18p7619–7635Published online: March 16, 2017- Jin Wang
- Liang-Fei Sun
- Wen-Wen Cui
- Wen-Shan Zhao
- Xue-Fei Ma
- Bin Li
- and others
Cited in Scopus: 16P2X receptors are ATP-gated trimeric channels with important roles in diverse pathophysiological functions. A detailed understanding of the mechanism underlying the gating process of these receptors is thus fundamentally important and may open new therapeutic avenues. The left flipper (LF) domain of the P2X receptors is a flexible loop structure, and its coordinated motions together with the dorsal fin (DF) domain are crucial for the channel gating of the P2X receptors. However, the mechanism underlying the crucial role of the LF domain in the channel gating remains obscure.