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From Proteopedia
(Difference between revisions)
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for omnidirectional sensitivity <ref name="Piezo Senses Tension "/> <ref> DOI 10.7554/eLife.33660 </ref> | for omnidirectional sensitivity <ref name="Piezo Senses Tension "/> <ref> DOI 10.7554/eLife.33660 </ref> | ||
- | ==='''Gating mechanism'''=== | + | ==='''[https://en.wikipedia.org/wiki/Gating_(electrophysiology) Gating mechanism]'''=== |
Piezo 1 possesses delicate force sensing and mechanotransduction mechanisms. Here, we explain how Piezo channels senses and transduces mechanical force | Piezo 1 possesses delicate force sensing and mechanotransduction mechanisms. Here, we explain how Piezo channels senses and transduces mechanical force | ||
to gate the central ion conducting pore. | to gate the central ion conducting pore. | ||
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== Disease == | == Disease == | ||
- | Dehydrated hereditary stomatocytosis (DHS) is a genetic disease with impaired red blood cell (RBC) membrane properties that affect intracellular cation concentrations. (Al) The RBCs are abnormally shaped and they result in haemolytic anaemia. (ad) | + | [https://en.wikipedia.org/wiki/Hereditary_stomatocytosis Dehydrated hereditary stomatocytosis] (DHS) is a genetic disease with impaired red blood cell (RBC) membrane properties that affect intracellular cation concentrations. (Al) The RBCs are abnormally shaped and they result in [https://en.wikipedia.org/wiki/Hemolytic_anemia haemolytic anaemia]. (ad) |
- | Piezo1 is expressed in the plasma membranes of RBCs, and its role is to control RBCs’s | + | Piezo1 is expressed in the plasma membranes of RBCs, and its role is to control RBCs’s osmolarity. It also plays a prevalent role in the [https://en.wikipedia.org/wiki/Erythropoiesis erythroid differentiation]. Mutations in PIEZO1 distort mechanosensitive channel regulation, leading to increased cation transport in [https://en.wikipedia.org/wiki/Red_blood_cell erythroid cells]. (ad) |
According to studies, piezo1 mutations are the cause of DHS. (ad) Those mutations could provoke increases in permeability of cations in RBC by different mechanisms. It could induce mechanically activated currents that inactivate more slowly than wild-type currents. They could also affect the inactivation process by either destabilising the inactivated state or stabilising the channel in the open state. As a result, the open to inactivated state equilibrium shifts towards open. Na+ and Ca2+ ion influx consequently increases, and the intracellular K+ concentration decreases in a steady state. (al) | According to studies, piezo1 mutations are the cause of DHS. (ad) Those mutations could provoke increases in permeability of cations in RBC by different mechanisms. It could induce mechanically activated currents that inactivate more slowly than wild-type currents. They could also affect the inactivation process by either destabilising the inactivated state or stabilising the channel in the open state. As a result, the open to inactivated state equilibrium shifts towards open. Na+ and Ca2+ ion influx consequently increases, and the intracellular K+ concentration decreases in a steady state. (al) | ||
The evolution of piezo1’s function steams from a change in its 3D structure. All the dehydrated hereditary stomatocytosis-associated mutations locate at C-terminal half of PIEZO1, but the way it affects piezo1’s structure is yet to be fully understood. (Al) | The evolution of piezo1’s function steams from a change in its 3D structure. All the dehydrated hereditary stomatocytosis-associated mutations locate at C-terminal half of PIEZO1, but the way it affects piezo1’s structure is yet to be fully understood. (Al) |
Revision as of 11:53, 9 January 2021
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References
- ↑ 1.0 1.1 1.2 Zhao Q, Wu K, Geng J, Chi S, Wang Y, Zhi P, Zhang M, Xiao B. Ion Permeation and Mechanotransduction Mechanisms of Mechanosensitive Piezo Channels. Neuron. 2016 Mar 16;89(6):1248-1263. doi: 10.1016/j.neuron.2016.01.046. Epub 2016, Feb 25. PMID:26924440 doi:http://dx.doi.org/10.1016/j.neuron.2016.01.046
- ↑ 2.0 2.1 Parpaite T, Coste B. Piezo channels. Curr Biol. 2017 Apr 3;27(7):R250-R252. doi: 10.1016/j.cub.2017.01.048. PMID:28376327 doi:http://dx.doi.org/10.1016/j.cub.2017.01.048
- ↑ 3.0 3.1 Wei L, Mousawi F, Li D, Roger S, Li J, Yang X, Jiang LH. Adenosine Triphosphate Release and P2 Receptor Signaling in Piezo1 Channel-Dependent Mechanoregulation. Front Pharmacol. 2019 Nov 6;10:1304. doi: 10.3389/fphar.2019.01304. eCollection, 2019. PMID:31780935 doi:http://dx.doi.org/10.3389/fphar.2019.01304
- ↑ Lin YC, Guo YR, Miyagi A, Levring J, MacKinnon R, Scheuring S. Force-induced conformational changes in PIEZO1. Nature. 2019 Sep;573(7773):230-234. doi: 10.1038/s41586-019-1499-2. Epub 2019 Aug, 21. PMID:31435018 doi:http://dx.doi.org/10.1038/s41586-019-1499-2
- ↑ 5.0 5.1 Zhou, Z. (2019). Structural Analysis of Piezo1 Ion Channel Reveals the Relationship between Amino Acid Sequence Mutations and Human Diseases. 139–155. DOI 10.4236/jbm.2019.712012
- ↑ Zhao Q, Zhou H, Chi S, Wang Y, Wang J, Geng J, Wu K, Liu W, Zhang T, Dong MQ, Wang J, Li X, Xiao B. Structure and mechanogating mechanism of the Piezo1 channel. Nature. 2018 Feb 22;554(7693):487-492. doi: 10.1038/nature25743. Epub 2018 Jan, 22. PMID:29469092 doi:http://dx.doi.org/10.1038/nature25743
- ↑ 7.0 7.1 7.2 7.3 Liang X, Howard J. Structural Biology: Piezo Senses Tension through Curvature. Curr Biol. 2018 Apr 23;28(8):R357-R359. doi: 10.1016/j.cub.2018.02.078. PMID:29689211 doi:http://dx.doi.org/10.1016/j.cub.2018.02.078
- ↑ Guo YR, MacKinnon R. Structure-based membrane dome mechanism for Piezo mechanosensitivity. Elife. 2017 Dec 12;6. pii: 33660. doi: 10.7554/eLife.33660. PMID:29231809 doi:http://dx.doi.org/10.7554/eLife.33660
- ↑ Guo YR, MacKinnon R. Structure-based membrane dome mechanism for Piezo mechanosensitivity. Elife. 2017 Dec 12;6. pii: 33660. doi: 10.7554/eLife.33660. PMID:29231809 doi:http://dx.doi.org/10.7554/eLife.33660
- ↑ Lin YC, Guo YR, Miyagi A, Levring J, MacKinnon R, Scheuring S. Force-induced conformational changes in PIEZO1. Nature. 2019 Sep;573(7773):230-234. doi: 10.1038/s41586-019-1499-2. Epub 2019 Aug, 21. PMID:31435018 doi:http://dx.doi.org/10.1038/s41586-019-1499-2
- ↑ Ge J, Li W, Zhao Q, Li N, Chen M, Zhi P, Li R, Gao N, Xiao B, Yang M. Architecture of the mammalian mechanosensitive Piezo1 channel. Nature. 2015 Nov 5;527(7576):64-9. doi: 10.1038/nature15247. Epub 2015 Sep 21. PMID:26390154 doi:http://dx.doi.org/10.1038/nature15247