Cryo-EM structure of OSCA1.2 from elucidates the mechanical basis of potential membrane hyperosmolality gating.

Koustav Maity, John M Heumann, Aaron P McGrath, Noah J Kopcho, Po-Kai Hsu, Chang-Wook Lee, James H Mapes, Denisse Garza, Srinivasan Krishnan, Garry P Morgan, Kevin J Hendargo, Thomas Klose, Steven D Rees, Arturo Medrano-Soto, Milton H Saier, Miguel Piñeros, Elizabeth A Komives, Julian I Schroeder, Geoffrey Chang, Michael H B Stowell

Journal: Proceedings of the National Academy of Sciences of the United States of America 2020;116(28):14309-14318

PMID: 31227607

Abstract

Sensing and responding to environmental water deficiency and osmotic stresses are essential for the growth, development, and survival of plants. Recently, an osmolality-sensing ion channel called OSCA1 was discovered that functions in sensing hyperosmolality in Here, we report the cryo-electron microscopy (cryo-EM) structure and function of an OSCA1 homolog from rice (; OsOSCA1.2), leading to a model of how it could mediate hyperosmolality sensing and transport pathway gating. The structure reveals a dimer; the molecular architecture of each subunit consists of 11 transmembrane (TM) helices and a cytosolic soluble domain that has homology to RNA recognition proteins. The TM domain is structurally related to the TMEM16 family of calcium-dependent ion channels and lipid scramblases. The cytosolic soluble domain possesses a distinct structural feature in the form of extended intracellular helical arms that are parallel to the plasma membrane. These helical arms are well positioned to potentially sense lateral tension on the inner leaflet of the lipid bilayer caused by changes in turgor pressure. Computational dynamic analysis suggests how this domain couples to the TM portion of the molecule to open a transport pathway. Hydrogen/deuterium exchange mass spectrometry (HDXMS) experimentally confirms the conformational dynamics of these coupled domains. These studies provide a framework to understand the structural basis of proposed hyperosmolality sensing in a staple crop plant, extend our knowledge of the anoctamin superfamily important for plants and fungi, and provide a structural mechanism for potentially translating membrane stress to transport regulation.

Address: Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California San Diego, La Jolla, CA 92093.; Department of Molecular, Cellular and Developmental Biology, University of Colorado Boulder, Boulder, CO 80309.; Cell and Developmental Biology Section, Division of Biological Sciences, University of California San Diego, La Jolla, CA 92093.; Boyce Thompson Institute for Plant Research, Cornell University, Ithaca, NY 14853.; Molecular Biology Section, Division of Biological Science, University of California San Diego, La Jolla, CA 92093.; Department of Biological Sciences, Purdue University, West Lafayette, IN 47907.; Boyce Thompson Institute for Plant Research, Cornell University, Ithaca, NY 14853.; Robert W. Holley Center for Agriculture and Health, United States Department of Agriculture-Agricultural Research Service, Cornell University, Ithaca, NY 14853.; Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, CA 92093.; Cell and Developmental Biology Section, Division of Biological Sciences, University of California San Diego, La Jolla, CA 92093; [email protected] [email protected] [email protected].; Skaggs School of Pharmacy and Pharmaceutical Sciences, University of California San Diego, La Jolla, CA 92093; [email protected] [email protected] [email protected].; Department of Pharmacology, School of Medicine, University of California San Diego, La Jolla, CA 92093.; Department of Molecular, Cellular and Developmental Biology, University of Colorado Boulder, Boulder, CO 80309; [email protected] [email protected] [email protected].
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