Molecular mechanism underlying regulation of Arabidopsis CLCa transporter by nucleotides and phospholipids.

Yang, Zhao; Zhang, Xue; Ye, Shiwei; Zheng, Jingtao; Huang, Xiaowei; Yu, Fang; Chen, Zhenguo; Cai, Shiqing et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

Chloride channels (CLCs) transport anion across membrane to regulate ion homeostasis and acidification of intracellular organelles, and are divided into anion channels and anion/proton antiporters. Arabidopsis thaliana CLCa (AtCLCa) transporter localizes to the tonoplast which imports NO<sub>3</sub><sup>-</sup> and to a less extent Cl<sup>-</sup> from cytoplasm. The activity of AtCLCa and many other CLCs is regulated by nucleotides and phospholipids, however, the molecular mechanism remains unclear. Here we determine the cryo-EM structures of AtCLCa bound with NO<sub>3</sub><sup>-</sup> and Cl<sup>-</sup>, respectively. Both structures are captured in ATP and PI(4,5)P<sub>2</sub> bound conformation. Structural and electrophysiological analyses reveal a previously unidentified N-terminal β-hairpin that is stabilized by ATP binding to block the anion transport pathway, thereby inhibiting the AtCLCa activity. While AMP loses the inhibition capacity due to lack of the β/γ- phosphates required for β-hairpin stabilization. This well explains how AtCLCa senses the ATP/AMP status to regulate the physiological nitrogen-carbon balance. Our data further show that PI(4,5)P<sub>2</sub> or PI(3,5)P<sub>2</sub> binds to the AtCLCa dimer interface and occupies the proton-exit pathway, which may help to understand the inhibition of AtCLCa by phospholipids to facilitate guard cell vacuole acidification and stomatal closure. In a word, our work suggests the regulatory mechanism of AtCLCa by nucleotides and phospholipids under certain physiological scenarios and provides new insights for future study of CLCs.

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