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Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels

Aluminum-activated malate transporters (ALMTs) form an anion channel family that plays essential roles in diverse functions in plants. Arabidopsis ALMT12, also named QUAC1 (quick anion channel 1), regulates stomatal closure in response to environmental stimuli. However, the molecular basis of ALMT12...

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Autores principales: Qin, Li, Tang, Ling-hui, Xu, Jia-shu, Zhang, Xian-hui, Zhu, Yun, Zhang, Chun-rui, Wang, Mei-hua, Liu, Xue-lei, Li, Fei, Sun, Fei, Su, Min, Zhai, Yujia, Chen, Yu-hang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for the Advancement of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8890709/
https://www.ncbi.nlm.nih.gov/pubmed/35235352
http://dx.doi.org/10.1126/sciadv.abm3238
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author Qin, Li
Tang, Ling-hui
Xu, Jia-shu
Zhang, Xian-hui
Zhu, Yun
Zhang, Chun-rui
Wang, Mei-hua
Liu, Xue-lei
Li, Fei
Sun, Fei
Su, Min
Zhai, Yujia
Chen, Yu-hang
author_facet Qin, Li
Tang, Ling-hui
Xu, Jia-shu
Zhang, Xian-hui
Zhu, Yun
Zhang, Chun-rui
Wang, Mei-hua
Liu, Xue-lei
Li, Fei
Sun, Fei
Su, Min
Zhai, Yujia
Chen, Yu-hang
author_sort Qin, Li
collection PubMed
description Aluminum-activated malate transporters (ALMTs) form an anion channel family that plays essential roles in diverse functions in plants. Arabidopsis ALMT12, also named QUAC1 (quick anion channel 1), regulates stomatal closure in response to environmental stimuli. However, the molecular basis of ALMT12/QUAC1 activity remains elusive. Here, we describe the cryo-EM structure of ALMT12/QUAC1 from Glycine max at 3.5-Å resolution. GmALMT12/QUAC1 is a symmetrical dimer, forming a single electropositive T-shaped pore across the membrane. The transmembrane and cytoplasmic domains are assembled into a twisted two-layer architecture, with their associated dimeric interfaces nearly perpendicular. GmALMT12/QUAC1-mediated currents display rapid kinetics of activation/deactivation and a bell-shaped voltage dependency, reminiscent of the rapid (R)–type anion currents. Our structural and functional analyses reveal a domain-twisting mechanism for malate-mediated activation. Together, our study uncovers the molecular basis for a previously uncharacterized class of anion channels and provides insights into the gating and modulation of the ALMT12/QUAC1 anion channel.
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spelling pubmed-88907092022-03-14 Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels Qin, Li Tang, Ling-hui Xu, Jia-shu Zhang, Xian-hui Zhu, Yun Zhang, Chun-rui Wang, Mei-hua Liu, Xue-lei Li, Fei Sun, Fei Su, Min Zhai, Yujia Chen, Yu-hang Sci Adv Biomedicine and Life Sciences Aluminum-activated malate transporters (ALMTs) form an anion channel family that plays essential roles in diverse functions in plants. Arabidopsis ALMT12, also named QUAC1 (quick anion channel 1), regulates stomatal closure in response to environmental stimuli. However, the molecular basis of ALMT12/QUAC1 activity remains elusive. Here, we describe the cryo-EM structure of ALMT12/QUAC1 from Glycine max at 3.5-Å resolution. GmALMT12/QUAC1 is a symmetrical dimer, forming a single electropositive T-shaped pore across the membrane. The transmembrane and cytoplasmic domains are assembled into a twisted two-layer architecture, with their associated dimeric interfaces nearly perpendicular. GmALMT12/QUAC1-mediated currents display rapid kinetics of activation/deactivation and a bell-shaped voltage dependency, reminiscent of the rapid (R)–type anion currents. Our structural and functional analyses reveal a domain-twisting mechanism for malate-mediated activation. Together, our study uncovers the molecular basis for a previously uncharacterized class of anion channels and provides insights into the gating and modulation of the ALMT12/QUAC1 anion channel. American Association for the Advancement of Science 2022-03-02 /pmc/articles/PMC8890709/ /pubmed/35235352 http://dx.doi.org/10.1126/sciadv.abm3238 Text en Copyright © 2022 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC). https://creativecommons.org/licenses/by-nc/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license (https://creativecommons.org/licenses/by-nc/4.0/) , which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.
spellingShingle Biomedicine and Life Sciences
Qin, Li
Tang, Ling-hui
Xu, Jia-shu
Zhang, Xian-hui
Zhu, Yun
Zhang, Chun-rui
Wang, Mei-hua
Liu, Xue-lei
Li, Fei
Sun, Fei
Su, Min
Zhai, Yujia
Chen, Yu-hang
Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title_full Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title_fullStr Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title_full_unstemmed Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title_short Cryo-EM structure and electrophysiological characterization of ALMT from Glycine max reveal a previously uncharacterized class of anion channels
title_sort cryo-em structure and electrophysiological characterization of almt from glycine max reveal a previously uncharacterized class of anion channels
topic Biomedicine and Life Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8890709/
https://www.ncbi.nlm.nih.gov/pubmed/35235352
http://dx.doi.org/10.1126/sciadv.abm3238
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