Identification of molecular determinants that govern distinct STIM2 activation dynamics.

The endoplasmic reticulum (ER) Ca2+ sensors stromal interaction molecule 1 (STIM1) and STIM2, which connect ER Ca2+ depletion with extracellular Ca2+ influx, are crucial for the maintenance of Ca2+ homeostasis in mammalian cells. Despite the recent progress in unraveling the role of STIM2 in Ca2+ si...

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Main Authors: Sisi Zheng, Guolin Ma, Lian He, Tian Zhang, Jia Li, Xiaoman Yuan, Nhung T Nguyen, Yun Huang, Xiaoyan Zhang, Ping Gao, Robert Nwokonko, Donald L Gill, Hao Dong, Yubin Zhou, Youjun Wang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-11-01
Series:PLoS Biology
Online Access:https://doi.org/10.1371/journal.pbio.2006898
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spelling doaj-02baa7431c934d49906e1405d2bdf6ed2021-07-02T16:29:06ZengPublic Library of Science (PLoS)PLoS Biology1544-91731545-78852018-11-011611e200689810.1371/journal.pbio.2006898Identification of molecular determinants that govern distinct STIM2 activation dynamics.Sisi ZhengGuolin MaLian HeTian ZhangJia LiXiaoman YuanNhung T NguyenYun HuangXiaoyan ZhangPing GaoRobert NwokonkoDonald L GillHao DongYubin ZhouYoujun WangThe endoplasmic reticulum (ER) Ca2+ sensors stromal interaction molecule 1 (STIM1) and STIM2, which connect ER Ca2+ depletion with extracellular Ca2+ influx, are crucial for the maintenance of Ca2+ homeostasis in mammalian cells. Despite the recent progress in unraveling the role of STIM2 in Ca2+ signaling, the mechanistic underpinnings of its activation remain underexplored. We use an engineering approach to direct ER-resident STIMs to the plasma membrane (PM) while maintaining their correct membrane topology, as well as Förster resonance energy transfer (FRET) sensors that enabled in cellulo real-time monitoring of STIM activities. This allowed us to determine the calcium affinities of STIM1 and STIM2 both in cellulo and in situ, explaining the current discrepancies in the literature. We also identified the key structural determinants, especially the corresponding G residue in STIM1, which define the distinct activation dynamics of STIM2. The chimeric E470G mutation could switch STIM2 from a slow and weak Orai channel activator into a fast and potent one like STIM1 and vice versa. The systemic dissection of STIM2 activation by protein engineering sets the stage for the elucidation of the regulation and function of STIM2-mediated signaling in mammals.https://doi.org/10.1371/journal.pbio.2006898
collection DOAJ
language English
format Article
sources DOAJ
author Sisi Zheng
Guolin Ma
Lian He
Tian Zhang
Jia Li
Xiaoman Yuan
Nhung T Nguyen
Yun Huang
Xiaoyan Zhang
Ping Gao
Robert Nwokonko
Donald L Gill
Hao Dong
Yubin Zhou
Youjun Wang
spellingShingle Sisi Zheng
Guolin Ma
Lian He
Tian Zhang
Jia Li
Xiaoman Yuan
Nhung T Nguyen
Yun Huang
Xiaoyan Zhang
Ping Gao
Robert Nwokonko
Donald L Gill
Hao Dong
Yubin Zhou
Youjun Wang
Identification of molecular determinants that govern distinct STIM2 activation dynamics.
PLoS Biology
author_facet Sisi Zheng
Guolin Ma
Lian He
Tian Zhang
Jia Li
Xiaoman Yuan
Nhung T Nguyen
Yun Huang
Xiaoyan Zhang
Ping Gao
Robert Nwokonko
Donald L Gill
Hao Dong
Yubin Zhou
Youjun Wang
author_sort Sisi Zheng
title Identification of molecular determinants that govern distinct STIM2 activation dynamics.
title_short Identification of molecular determinants that govern distinct STIM2 activation dynamics.
title_full Identification of molecular determinants that govern distinct STIM2 activation dynamics.
title_fullStr Identification of molecular determinants that govern distinct STIM2 activation dynamics.
title_full_unstemmed Identification of molecular determinants that govern distinct STIM2 activation dynamics.
title_sort identification of molecular determinants that govern distinct stim2 activation dynamics.
publisher Public Library of Science (PLoS)
series PLoS Biology
issn 1544-9173
1545-7885
publishDate 2018-11-01
description The endoplasmic reticulum (ER) Ca2+ sensors stromal interaction molecule 1 (STIM1) and STIM2, which connect ER Ca2+ depletion with extracellular Ca2+ influx, are crucial for the maintenance of Ca2+ homeostasis in mammalian cells. Despite the recent progress in unraveling the role of STIM2 in Ca2+ signaling, the mechanistic underpinnings of its activation remain underexplored. We use an engineering approach to direct ER-resident STIMs to the plasma membrane (PM) while maintaining their correct membrane topology, as well as Förster resonance energy transfer (FRET) sensors that enabled in cellulo real-time monitoring of STIM activities. This allowed us to determine the calcium affinities of STIM1 and STIM2 both in cellulo and in situ, explaining the current discrepancies in the literature. We also identified the key structural determinants, especially the corresponding G residue in STIM1, which define the distinct activation dynamics of STIM2. The chimeric E470G mutation could switch STIM2 from a slow and weak Orai channel activator into a fast and potent one like STIM1 and vice versa. The systemic dissection of STIM2 activation by protein engineering sets the stage for the elucidation of the regulation and function of STIM2-mediated signaling in mammals.
url https://doi.org/10.1371/journal.pbio.2006898
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