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Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel

Organellar two-pore channels (TPCs) function as a homodimer with each subunit containing two homologous Shaker-like 6-TM repeats(1). They belong to the voltage-gated ion channel superfamily(2) and are ubiquitously expressed in animals and plants(3,4). Mammalian TPC1 and TPC2 are localized to the end...

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Autores principales: She, Ji, Guo, Jiangtao, Chen, Qingfeng, Zeng, Weizhong, Jiang, Youxing, Bai, Xiao-chen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5886804/
https://www.ncbi.nlm.nih.gov/pubmed/29562233
http://dx.doi.org/10.1038/nature26139
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author She, Ji
Guo, Jiangtao
Chen, Qingfeng
Zeng, Weizhong
Jiang, Youxing
Bai, Xiao-chen
author_facet She, Ji
Guo, Jiangtao
Chen, Qingfeng
Zeng, Weizhong
Jiang, Youxing
Bai, Xiao-chen
author_sort She, Ji
collection PubMed
description Organellar two-pore channels (TPCs) function as a homodimer with each subunit containing two homologous Shaker-like 6-TM repeats(1). They belong to the voltage-gated ion channel superfamily(2) and are ubiquitously expressed in animals and plants(3,4). Mammalian TPC1 and TPC2 are localized to the endolysosomal membrane and play critical roles in regulating the physiological functions of these acidic organelles(5–7). Here we present the cryo-EM structures of mouse TPC1 (MmTPC1), a voltage-dependent, phosphatidylinositol 3,5-bisphosphate (PtdIns(3,5)P(2)) activated Na(+) selective channel, in both the apo closed and ligand-bound open states which, combined with functional analysis, provide comprehensive structural insights into the selectivity and gating mechanisms of mammalian TPC channels. The channel has a coin slot-shaped ion pathway in the filter that defines the selectivity of mammalian TPCs. Only the voltage sensing domain from the second 6-TM domain confers voltage dependence to MmTPC1. Endolysosome-specific PtdIns(3,5)P(2) binds to the first 6-TM domain and activates the channel under depolarizing membrane potential. Structural comparison between the apo and PtdIns(3,5)P(2)-bound structures elucidates the interplay between voltage and ligand in channel activation. In light of the emerging importance of phosphoinositide regulation of ion channels, the MmTPC1 structures exemplify the lipid binding and regulation in a 6-TM voltage-gated channel.
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spelling pubmed-58868042018-09-21 Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel She, Ji Guo, Jiangtao Chen, Qingfeng Zeng, Weizhong Jiang, Youxing Bai, Xiao-chen Nature Article Organellar two-pore channels (TPCs) function as a homodimer with each subunit containing two homologous Shaker-like 6-TM repeats(1). They belong to the voltage-gated ion channel superfamily(2) and are ubiquitously expressed in animals and plants(3,4). Mammalian TPC1 and TPC2 are localized to the endolysosomal membrane and play critical roles in regulating the physiological functions of these acidic organelles(5–7). Here we present the cryo-EM structures of mouse TPC1 (MmTPC1), a voltage-dependent, phosphatidylinositol 3,5-bisphosphate (PtdIns(3,5)P(2)) activated Na(+) selective channel, in both the apo closed and ligand-bound open states which, combined with functional analysis, provide comprehensive structural insights into the selectivity and gating mechanisms of mammalian TPC channels. The channel has a coin slot-shaped ion pathway in the filter that defines the selectivity of mammalian TPCs. Only the voltage sensing domain from the second 6-TM domain confers voltage dependence to MmTPC1. Endolysosome-specific PtdIns(3,5)P(2) binds to the first 6-TM domain and activates the channel under depolarizing membrane potential. Structural comparison between the apo and PtdIns(3,5)P(2)-bound structures elucidates the interplay between voltage and ligand in channel activation. In light of the emerging importance of phosphoinositide regulation of ion channels, the MmTPC1 structures exemplify the lipid binding and regulation in a 6-TM voltage-gated channel. 2018-03-21 2018-04-05 /pmc/articles/PMC5886804/ /pubmed/29562233 http://dx.doi.org/10.1038/nature26139 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
She, Ji
Guo, Jiangtao
Chen, Qingfeng
Zeng, Weizhong
Jiang, Youxing
Bai, Xiao-chen
Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title_full Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title_fullStr Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title_full_unstemmed Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title_short Structural insights into the voltage and phospholipid activation of mammalian TPC1 channel
title_sort structural insights into the voltage and phospholipid activation of mammalian tpc1 channel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5886804/
https://www.ncbi.nlm.nih.gov/pubmed/29562233
http://dx.doi.org/10.1038/nature26139
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