Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.

Store-operated CRAC channels regulate a wide range of cellular functions including gene expression, chemotaxis, and proliferation. CRAC channels consist of two components: the Orai proteins (Orai1-3), which form the ion-selective pore, and STIM proteins (STIM1-2), which form the endoplasmic reticulu...

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Main Authors: Leidamarie Tirado-Lee, Megumi Yamashita, Murali Prakriya
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0128622
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spelling doaj-ca15237ebbf64164a5d2a3bc794533c52021-03-04T11:39:07ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01106e012862210.1371/journal.pone.0128622Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.Leidamarie Tirado-LeeMegumi YamashitaMurali PrakriyaStore-operated CRAC channels regulate a wide range of cellular functions including gene expression, chemotaxis, and proliferation. CRAC channels consist of two components: the Orai proteins (Orai1-3), which form the ion-selective pore, and STIM proteins (STIM1-2), which form the endoplasmic reticulum (ER) Ca2+ sensors. Activation of CRAC channels is initiated by the migration of STIM1 to the ER-plasma membrane (PM) junctions, where it directly interacts with Orai1 to open the Ca2+-selective pores of the CRAC channels. The recent elucidation of the Drosophila Orai structure revealed a hexameric channel wherein the C-terminal helices of adjacent Orai subunits associate in an anti-parallel orientation. This association is maintained by hydrophobic interactions between the Drosophila equivalents of human Orai1 residues L273 and L276. Here, we used mutagenesis and chemical cross-linking to assess the nature and extent of conformational changes in the self-associated Orai1 C-termini during STIM1 binding. We find that linking the anti-parallel coiled-coils of the adjacent Orai1 C-termini through disulfide cross-links diminishes STIM1-Orai1 interaction, as assessed by FRET. Conversely, prior binding of STIM1 to the Orai1 C-terminus impairs cross-linking of the Orai1 C-termini. Mutational analysis indicated that a bend of the Orai1 helix located upstream of the self-associated coils (formed by the amino acid sequence SHK) establishes an appropriate orientation of the Orai1 C-termini that is required for STIM1 binding. Together, our results support a model wherein the self-associated Orai1 C-termini rearrange modestly to accommodate STIM1 binding.https://doi.org/10.1371/journal.pone.0128622
collection DOAJ
language English
format Article
sources DOAJ
author Leidamarie Tirado-Lee
Megumi Yamashita
Murali Prakriya
spellingShingle Leidamarie Tirado-Lee
Megumi Yamashita
Murali Prakriya
Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
PLoS ONE
author_facet Leidamarie Tirado-Lee
Megumi Yamashita
Murali Prakriya
author_sort Leidamarie Tirado-Lee
title Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
title_short Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
title_full Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
title_fullStr Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
title_full_unstemmed Conformational Changes in the Orai1 C-Terminus Evoked by STIM1 Binding.
title_sort conformational changes in the orai1 c-terminus evoked by stim1 binding.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Store-operated CRAC channels regulate a wide range of cellular functions including gene expression, chemotaxis, and proliferation. CRAC channels consist of two components: the Orai proteins (Orai1-3), which form the ion-selective pore, and STIM proteins (STIM1-2), which form the endoplasmic reticulum (ER) Ca2+ sensors. Activation of CRAC channels is initiated by the migration of STIM1 to the ER-plasma membrane (PM) junctions, where it directly interacts with Orai1 to open the Ca2+-selective pores of the CRAC channels. The recent elucidation of the Drosophila Orai structure revealed a hexameric channel wherein the C-terminal helices of adjacent Orai subunits associate in an anti-parallel orientation. This association is maintained by hydrophobic interactions between the Drosophila equivalents of human Orai1 residues L273 and L276. Here, we used mutagenesis and chemical cross-linking to assess the nature and extent of conformational changes in the self-associated Orai1 C-termini during STIM1 binding. We find that linking the anti-parallel coiled-coils of the adjacent Orai1 C-termini through disulfide cross-links diminishes STIM1-Orai1 interaction, as assessed by FRET. Conversely, prior binding of STIM1 to the Orai1 C-terminus impairs cross-linking of the Orai1 C-termini. Mutational analysis indicated that a bend of the Orai1 helix located upstream of the self-associated coils (formed by the amino acid sequence SHK) establishes an appropriate orientation of the Orai1 C-termini that is required for STIM1 binding. Together, our results support a model wherein the self-associated Orai1 C-termini rearrange modestly to accommodate STIM1 binding.
url https://doi.org/10.1371/journal.pone.0128622
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