Sandbox Reserved 1653: Difference between revisions

From Proteopedia
Jump to navigationJump to search
No edit summary
No edit summary
Line 48: Line 48:


Piezo 1 has a central domain which is composed of <scene name='86/868186/Cedohihctd_color2/1'>one CTD, one cap (or CED), 3 inner helice (IH) and 3 outer helice (OH)</scene>.
Piezo 1 has a central domain which is composed of <scene name='86/868186/Cedohihctd_color2/1'>one CTD, one cap (or CED), 3 inner helice (IH) and 3 outer helice (OH)</scene>.
This central domain is surrounded by 3 extended arms called <scene name='86/868186/Blade/1'>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 unites (THUs) constitute  
"Each of these blades, deflecting at an angle of 100° perpendicular to the membrane, contains 6 tandems transmembranar helical unites (THUs) constitute  
of 4 transmembrane domains" <ref name= "Article six"> DOI 10.1038/nature25743</ref> <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>
of 4 transmembrane domains" <ref name= "Article six"> DOI 10.1038/nature25743</ref> <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>
Line 72: Line 72:
It forms an intracellular vestibule along the z-axis, and it is essential for ion permeation properties. More precisely, the pore module of Piezo channels comprises the C-terminal region from residues 2172 to 2547.<ref name="architecture"> DOI 10.1038/nature15247 </ref> The CTD triangular plane has a beam-facing side of the triangular, and it is separated into two surfaces with negative and positive electrostatic potentials.<ref name="mechanogating"/>
It forms an intracellular vestibule along the z-axis, and it is essential for ion permeation properties. More precisely, the pore module of Piezo channels comprises the C-terminal region from residues 2172 to 2547.<ref name="architecture"> DOI 10.1038/nature15247 </ref> The CTD triangular plane has a beam-facing side of the triangular, and it is separated into two surfaces with negative and positive electrostatic potentials.<ref name="mechanogating"/>
   
   
The beam is a 90 Å-long intracellular structure in the central region of the ion channel. It is a part of the three-bladed, propeller-shaped architecture characteristic of piezo1. It is a piece of the “beam-CTD-anchor-OH-IH” relaying interface that forms the central pore module. It is because the beam connects the THU, to the CTD and the outer helix (OH) that it enables the transmission of the mechanical force, and thus the opening of piezo1’s pore.<ref name="mechanogating"/> It delivers the mechanical signals from the blades, or the plasma membrane, to the central pore module region.<ref name="structural analysis"> DOI 10.4236/jbm.2019.712012 </ref>
The beam is a 90 Å-long intracellular structure in the central region of the ion channel. It is a <scene name='86/868186/Blade_ans_beam/1'>part of the three-bladed</scene>, propeller-shaped architecture characteristic of piezo1. It is a piece of the “beam-CTD-anchor-OH-IH” relaying interface that forms the central pore module. It is because the beam connects the THU, to the CTD and the outer helix (OH) that it enables the transmission of the mechanical force, and thus the opening of piezo1’s pore.<ref name="mechanogating"/> It delivers the mechanical signals from the blades, or the plasma membrane, to the central pore module region.<ref name="structural analysis"> DOI 10.4236/jbm.2019.712012 </ref>
Indeed, the beams are connected to the transmembrane helical units (THUs), which forms a triangular plane above its proximal end, more precisely to the intracellular surface of THU7–THU9. The THU7-THU8 makes the largest intracellular loop of piezo1. This loop starts at the distal end of the beam, interacts with the CTD, and then folds back to the distal end of the beam before connecting to a transmembrane region. Moreover, the beam crosses through the beam-facing side of the triangular CTD, forming interactions with both CTDα 1 and CTDα 2.
Indeed, the beams are connected to the transmembrane helical units (THUs), which forms a triangular plane above its proximal end, more precisely to the intracellular surface of THU7–THU9. The THU7-THU8 makes the largest intracellular loop of piezo1. This loop starts at the distal end of the beam, interacts with the CTD, and then folds back to the distal end of the beam before connecting to a transmembrane region. Moreover, the beam crosses through the beam-facing side of the triangular CTD, forming interactions with both CTDα 1 and CTDα 2.
This position and connections of the beam render it an ideal structure for mechanical transmission from the distal THUs to the central ion-conducting pore.
This position and connections of the beam render it an ideal structure for mechanical transmission from the distal THUs to the central ion-conducting pore.

Revision as of 10:37, 10 January 2021

Piezo 1

Drag the structure with the mouse to rotate

References