4.8 Article

Structure and activity of SLAC1 channels for stomatal signaling in leaves

出版社

NATL ACAD SCIENCES
DOI: 10.1073/pnas.2015151118

关键词

abscisic acid signaling; phosphorylation; channel activation; cryo-EM; electrophysiology

资金

  1. National Key Research and Development Program of China [2016YFA0500503, 2020YFA0509903]
  2. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA24020305]
  3. National Natural Science Foundation of China [31470728, 31322005, 31872721]
  4. NIH [R35GM134920-01, R01GM107462, P41GM116799]
  5. NSF [MCB-1934628]

向作者/读者索取更多资源

Stomata in leaves regulate gas exchange between the plant and its atmosphere. Phosphorylation of SLAC1 fine-tunes an equilibrium between basal and activated states, controlling the degree of stomatal opening. Cryo-EM analysis revealed structural features of SLAC1 that help understand its functional mechanism.
Stomata in leaves regulate gas exchange between the plant and its atmosphere. Various environmental stimuli elicit abscisic acid (ABA); ABA leads to phosphoactivation of slow anion channel 1 (SLAC1); SLAC1 activity reduces turgor pressure in aperture-defining guard cells; and stomatal closure ensues. We used electrophysiology for functional characterizations of Arabidopsis thaliana SLAC1 (AtSLAC1) and cryoelectron microscopy (cryo-EM) for structural analysis of Brachypodium distachyon SLAC1 (BdSLAC1), at 2.97-? resolution. We identified 14 phosphorylation sites in AtSLAC1 and showed nearly 330-fold channel-activity enhancement with 4 to 6 of these phosphorylated. Seven SLAC1-conserved arginines are poised in BdSLAC1 for regulatory interaction with the N-terminal extension. This BdSLAC1 structure has its pores closed, in a basal state, spring loaded by phenylalanyl residues in high-energy conformations. SLAC1 phosphorylation fine-tunes an equilibrium between basal and activated SLAC1 trimers, thereby controlling the degree of stomatal opening.

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