Mechanistic insights into phosphoactivation of SLAC1 in guard cell signaling

Author:

Qin Li12ORCID,Deng Ya-nan12ORCID,Zhang Xiang-yun12ORCID,Tang Ling-hui12ORCID,Zhang Chun-rui12ORCID,Xu Shi-min12ORCID,Wang Ke12,Wang Mei-hua12ORCID,Zhang Xian-hui12ORCID,Su Min12ORCID,Xie Qi234ORCID,Hendrickson Wayne A.56ORCID,Chen Yu-hang12ORCID

Affiliation:

1. State Key Laboratory of Molecular Developmental Biology, Institute of Genetics and Developmental Biology, The Innovative Academy of Seed Design, Chinese Academy of Sciences, Beijing 100101, China

2. College of Advanced Agricultural Sciences, University of Chinese Academy of Sciences, Beijing 100049, China

3. State Key Laboratory of Plant Genomics, Institute of Genetics and Developmental Biology, The Innovative Academy of Seed Design, Chinese Academy of Sciences, Beijing 100101, China

4. National Center of Technology Innovation for Maize, State Key Laboratory of Crop Germplasm Innovation and Molecular Breeding, Syngenta Group China, Beijing 102206, China

5. Department of Biochemistry and Molecular Biophysics, Columbia University, New York, NY 10032

6. Department of Physiology and Cellular Biophysics, Columbia University, New York, NY 10032

Abstract

Stomata in leaves regulate gas (carbon dioxide and water vapor) exchange and water transpiration between plants and the atmosphere. SLow Anion Channel 1 (SLAC1) mediates anion efflux from guard cells and plays a crucial role in controlling stomatal aperture. It serves as a central hub for multiple signaling pathways in response to environmental stimuli, with its activity regulated through phosphorylation via various plant protein kinases. However, the molecular mechanism underlying SLAC1 phosphoactivation has remained elusive. Through a combination of protein sequence analyses, AlphaFold-based modeling and electrophysiological studies, we unveiled that the highly conserved motifs on the N- and C-terminal segments of SLAC1 form a cytosolic regulatory domain (CRD) that interacts with the transmembrane domain(TMD), thereby maintaining the channel in an autoinhibited state. Mutations in these conserved motifs destabilize the CRD, releasing autoinhibition in SLAC1 and enabling its transition into an activated state. Our further studies demonstrated that SLAC1 activation undergoes an autoinhibition-release process and subsequent structural changes in the pore helices. These findings provide mechanistic insights into the activation mechanism of SLAC1 and shed light on understanding how SLAC1 controls stomatal closure in response to environmental stimuli.

Funder

MOST | National Key Research and Development Program of China

Strategic Priority Research Program of the Chinese Academy of Sciences

National Natural Science Foundation of China

International Partnership Program of Chinese Academy of Sciences

HHS | NIH

Publisher

Proceedings of the National Academy of Sciences

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