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<references/><StructureSection load='5z10' size='350' side='right' caption='Structure of the mechanosensitive Piezo1 channel 1 from [http://www.rcsb.org/structure/5Z10 PBD]' scene=''>
<references/><StructureSection load='5z10' size='350' side='right' caption='Structure of the mechanosensitive Piezo1 channel 1 from [http://www.rcsb.org/structure/5Z10 PBD]' scene=''>
Piezo1 proteins constitute a family of excitatory [[ion channels]] directly gated by mechanical forces. Piezo1 is functionally conserved and very important because all living organisms are subjected to mechanical forces from their environment for instance [https://en.wikipedia.org/wiki/Proprioception proprioception], [https://en.wikipedia.org/wiki/Osmoregulation osmoregulation], vascular tone, blood flow regulation, muscle [https://en.wikipedia.org/wiki/Homeostasis homeostasis], flow sensing in kidney, bladder and lungs.<ref name="Ion Permeation"> DOI 10.1016/j.neuron.2016.01.046 </ref>,<ref name = "Cell Press"> DOI 10.1016/j.cub.2017.01.048 </ref>
Piezo1 proteins constitute a family of excitatory [[ion channels]] directly gated by mechanical forces. Piezo1 is functionally conserved and very important because all living organisms are subjected to mechanical forces from their environment for instance [https://en.wikipedia.org/wiki/Proprioception proprioception], [https://en.wikipedia.org/wiki/Osmoregulation osmoregulation], vascular tone, blood flow regulation, muscle [https://en.wikipedia.org/wiki/Homeostasis homeostasis], flow sensing in kidney, bladder and lungs.<ref name="Ion Permeation"> DOI 10.1016/j.neuron.2016.01.046 </ref>


== Structure ==
== Structure ==


Piezo is a very large protein, approximately 2500 amino acids, that possesses a homotrimeric structure,  an intracellular and extracellular domain, and an unusually high number of transmembrane domains, up to 40.
Piezo is a very large protein, approximately 2500 amino acids, that possesses a homotrimeric structure,  an intracellular and extracellular domain, and an unusually high number of [https://en.wikipedia.org/wiki/Transmembrane_domain transmembrane domains], up to 40.


==='''Blade'''===
==='''Blade'''===
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This central domain is surrounded by 3 extended arms called <scene name='86/868186/Blade/2'>blades</scene> extending out from the central pore in a rotatory manner <ref name ="Alexandra"> 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 </ref>.
This central domain is surrounded by 3 extended arms called <scene name='86/868186/Blade/2'>blades</scene> extending out from the central pore in a rotatory manner <ref name ="Alexandra"> 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 </ref>.
"Each of these blades, deflecting at an angle of 100° perpendicular to the membrane, contains 6 tandems transmembranar helical units (THUs) constitute of 4 transmembrane domains".<ref name="mechanogating"/>,<ref name="Alexandra"/> "They are not planar: instead, they lie on a spherically curved surface with the membrane bulging into the cytoplasm".<ref name= "Piezo Senses Tension "> DOI 10.1016/j.cub.2018.02.078</ref>
"Each of these blades, deflecting at an angle of 100° perpendicular to the membrane, contains 6 tandems transmembranar helical units (THUs) constitute of 4 transmembrane domains".<ref name="mechanogating"/>,<ref name="Alexandra"/> "They are not planar: instead, they lie on a spherically curved surface with the membrane bulging into the cytoplasm".<ref name= "Piezo Senses Tension "> DOI 10.1016/j.cub.2018.02.078</ref>
These flexible blades are inside the membrane and force the membrane to curve. That is why, they are considered as mechanotransduction modules, force sensors and transducers to gate the central pore. "These 3 blades propeller architecture is mechanically interesting because 3 blades are the minimum for omnidirectional sensitivity".<ref name="Piezo Senses Tension "/>,<ref name="nv article" />
These flexible blades are inside the membrane and force the membrane to curve. That is why, they are considered as mechanotransduction modules, force sensors and transducers to gate the central pore. "These 3 blades propeller architecture is mechanically interesting because 3 blades are the minimum for omnidirectional sensitivity".<ref name="Piezo Senses Tension "/>


==='''CED or cap'''===
==='''CED or cap'''===
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Cells are able to perceive the filling of the stomach or the bladder, blood flow and lungs inflation.
Cells are able to perceive the filling of the stomach or the bladder, blood flow and lungs inflation.


Piezo1 is a sensor of mechanical forces in [https://en.wikipedia.org/wiki/Endothelium endothelial], urothelial and renal epithelial cells. For instance, Piezo1 is involved in shear stress sensing in blood vessel endothelial cells and is implicated in the development and physiological functions of the circulatory system, including the proper formation of blood, vessels, regulation of vascular tone and remodelling of small resistance arteries upon [https://en.wikipedia.org/wiki/Hypertension hypertension]. It is also involved in the homeostasis of the volume of red blood cells.<ref name="Cell Press"/>
Piezo1 is a sensor of mechanical forces in [https://en.wikipedia.org/wiki/Endothelium endothelial], urothelial and renal epithelial cells. For instance, Piezo1 is involved in shear stress sensing in blood vessel endothelial cells and is implicated in the development and physiological functions of the circulatory system, including the proper formation of blood, vessels, regulation of vascular tone and remodelling of small resistance arteries upon [https://en.wikipedia.org/wiki/Hypertension hypertension]. It is also involved in the homeostasis of the volume of red blood cells.
Piezo1 mediates cationic non-selective currents. Indeed, monovalent (Na+, K+) and divalent (Ca2+, Mg2+) can flow through Piezo1.  
Piezo1 mediates cationic non-selective currents. Indeed, monovalent (Na+, K+) and divalent (Ca2+, Mg2+) can flow through Piezo1.  
However, Piezo1 is implicated in excitatory channels because cations can enter into the cells which leads to the membrane [https://en.wikipedia.org/wiki/Depolarization depolarisation] or [https://en.wikipedia.org/wiki/Calcium_signaling calcium-dependent signalling pathway] (if Ca2+ enters).<ref name="Adenosine"> DOI 10.3389/fphar.2019.01304 </ref>
However, Piezo1 is implicated in excitatory channels because cations can enter into the cells which leads to the membrane [https://en.wikipedia.org/wiki/Depolarization depolarisation] or [https://en.wikipedia.org/wiki/Calcium_signaling calcium-dependent signalling pathway] (if Ca2+ enters).<ref name="Adenosine"> DOI 10.3389/fphar.2019.01304 </ref>
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The subcellular localisation of Piezo1 is also determining. In static conditions, its repartition is even on the membrane, but when a mechanical stimulus arises, Piezo1 accumulates at the cell’s apical. This process characterises endothelial cells’ alignment toward frictional force.
The subcellular localisation of Piezo1 is also determining. In static conditions, its repartition is even on the membrane, but when a mechanical stimulus arises, Piezo1 accumulates at the cell’s apical. This process characterises endothelial cells’ alignment toward frictional force.
However, Piezo1 is also able to drive endothelial cells migration without shear stress, through endothelial [https://en.wikipedia.org/wiki/Nitric_oxide_synthasenitric oxide synthase], a protein with major roles in vascular biology.<ref name= "vascularisation"> DOI 10.1038/nature13701</ref>
However, Piezo1 is also able to drive endothelial cells migration without shear stress, through endothelial [https://en.wikipedia.org/wiki/Nitric_oxide_synthasenitric oxide synthase], a protein with major roles in vascular biology.<ref name= "vascularisation"> DOI 10.1038/nature13701</ref>


== Diseases ==
== Diseases ==
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Lymphatic dysplasia <ref name = "Lymphatic dysplasia"> DOI 10.1016/bs.ctm.2017.01.001 </ref> is also a disease linked to loss of function mutations on Piezo1. The [https://en.wikipedia.org/wiki/Lymphatic_system lymphatic system] is independent from the vascular one, and its role is to transport antigens responsible for the immune response. If the interstitial fluid is not drained correctly back to the blood, it leads to local inflammation. The mutations on Piezo1 inactivate the channel gate and in this case the concentration of calcium is not increased. The protein isn’t sensitive to the pressure anymore.
Lymphatic dysplasia <ref name = "Lymphatic dysplasia"> DOI 10.1016/bs.ctm.2017.01.001 </ref> is also a disease linked to loss of function mutations on Piezo1. The [https://en.wikipedia.org/wiki/Lymphatic_system lymphatic system] is independent from the vascular one, and its role is to transport antigens responsible for the immune response. If the interstitial fluid is not drained correctly back to the blood, it leads to local inflammation. The mutations on Piezo1 inactivate the channel gate and in this case the concentration of calcium is not increased. The protein isn’t sensitive to the pressure anymore.


== Potential therapeutic target ==
== Potential therapeutic target ==
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== Relevance ==
== Relevance ==


Even if a lot is already known about Piezo1's structure, the precise mechanism of the pore is still unknown. Moreover, Piezo1 is present in a large number of tissues, but the differences in its roles are unclear. Further research is required to allow a better understanding of diseases linked to Piezo1 (like DHS), and thus a better treatment of those diseases.  
A majority of Piezo1’s structure has been resolved by [https://en.wikipedia.org/wiki/Cryogenic_electron_microscopy cryo-em] but still information is lacking on the N-term domain and some subregions. There is no full structure available yet which can be troublesome to understand the mechanism of the protein. Moreover, Piezo1 is present in a large number of tissues, but the differences in its roles are unclear. Further research is required to allow a better understanding of diseases linked to Piezo1 (like DHS), and thus a better treatment of those diseases.  


[http://www.rcsb.org/structure/5Z10 PBD]
[http://www.rcsb.org/structure/5Z10 PBD]

Latest revision as of 17:09, 16 January 2022

Structure of the mechanosensitive Piezo1 channel 1 from PBD

Drag the structure with the mouse to rotate

References