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Voltage-gating and cytosolic Ca2+ activation mechanisms of Arabidopsis two-pore channel AtTPC1.


ABSTRACT: Arabidopsis thaliana two-pore channel AtTPC1 is a voltage-gated, Ca2+-modulated, nonselective cation channel that is localized in the vacuolar membrane and responsible for generating slow vacuolar (SV) current. Under depolarizing membrane potential, cytosolic Ca2+ activates AtTPC1 by binding at the EF-hand domain, whereas luminal Ca2+ inhibits the channel by stabilizing the voltage-sensing domain II (VSDII) in the resting state. Here, we present 2.8 to 3.3 Å cryoelectron microscopy (cryo-EM) structures of AtTPC1 in two conformations, one in closed conformation with unbound EF-hand domain and resting VSDII and the other in a partially open conformation with Ca2+-bound EF-hand domain and activated VSDII. Structural comparison between the two different conformations allows us to elucidate the structural mechanisms of voltage gating, cytosolic Ca2+ activation, and their coupling in AtTPC1. This study also provides structural insight into the general voltage-gating mechanism among voltage-gated ion channels.

SUBMITTER: Ye F 

PROVIDER: S-EPMC8670513 | biostudies-literature | 2021 Dec

REPOSITORIES: biostudies-literature

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Voltage-gating and cytosolic Ca<sup>2+</sup> activation mechanisms of <i>Arabidopsis</i> two-pore channel AtTPC1.

Ye Fan F   Xu Lingyi L   Li Xiaoxiao X   Zeng Weizhong W   Gan Ninghai N   Zhao Cheng C   Yang Wei W   Jiang Youxing Y   Guo Jiangtao J  

Proceedings of the National Academy of Sciences of the United States of America 20211201 49


<i>Arabidopsis thaliana</i> two-pore channel AtTPC1 is a voltage-gated, Ca<sup>2+</sup>-modulated, nonselective cation channel that is localized in the vacuolar membrane and responsible for generating slow vacuolar (SV) current. Under depolarizing membrane potential, cytosolic Ca<sup>2+</sup> activates AtTPC1 by binding at the EF-hand domain, whereas luminal Ca<sup>2+</sup> inhibits the channel by stabilizing the voltage-sensing domain II (VSDII) in the resting state. Here, we present 2.8 to 3.3  ...[more]

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