Cryo-EM structure and molecular mechanism of abscisic acid transporter ABCG25.

Nat Plants

National Key Laboratory of Plant Molecular Genetics, Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, China.

Published: October 2023

AI Article Synopsis

  • Abscisic acid (ABA) is a crucial plant hormone that impacts processes like seed development and stomatal closure, synthesized mainly in vascular tissues and transported for functional roles.
  • Research detailed the structure of the ABA transporter ABCG25 in different states, revealing how ABA binds and how the transport process occurs.
  • The findings suggest a "gate-flipper" model for ABA transport, enhancing our understanding of ABA's physiological roles and its potential agricultural applications.

Article Abstract

Abscisic acid (ABA) is one of the plant hormones that regulate various physiological processes, including stomatal closure, seed germination and development. ABA is synthesized mainly in vascular tissues and transported to distal sites to exert its physiological functions. Many ABA transporters have been identified, however, the molecular mechanism of ABA transport remains elusive. Here we report the cryogenic electron microscopy structure of the Arabidopsis thaliana adenosine triphosphate-binding cassette G subfamily ABA exporter ABCG25 (AtABCG25) in inward-facing apo conformation, ABA-bound pre-translocation conformation and outward-facing occluded conformation. Structural and biochemical analyses reveal that the ABA bound with ABCG25 adopts a similar configuration as that in ABA receptors and that the ABA-specific binding is dictated by residues from transmembrane helices TM1, TM2 and TM5a of each protomer at the transmembrane domain interface. Comparison of different conformational structures reveals conformational changes, especially those of transmembrane helices and residues constituting the substrate translocation pathway during the cross-membrane transport process. Based on the structural data, a 'gate-flipper' translocation model of ABCG25-mediated ABA cross-membrane transport is proposed. Our structural data on AtABCG25 provide new clues to the physiological study of ABA and shed light on its potential applications in plants and agriculture.

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Source
http://dx.doi.org/10.1038/s41477-023-01509-7DOI Listing

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