The First Affiliated Hospital of USTC, MOE Key Laboratory for Membraneless Organelles and Cellular Dynamics, Hefei National Research Center for Interdisciplinary Sciences at the Microscale, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, China.
Biomedical Sciences and Health Laboratory of Anhui Province, University of Science and Technology of China, Hefei, China.
Nat Plants. 2023 Oct;9(10):1697-1708. doi: 10.1038/s41477-023-01510-0. Epub 2023 Sep 4.
Abscisic acid (ABA) is a phytohormone essential to the regulation of numerous aspects of plant growth and development. The cellular level of ABA is critical to its signalling and is determined by its rate of biosynthesis, catabolism and the rates of ABA transport. ABCG25 in Arabidopsis thaliana has been identified to be an ABA exporter and play roles in regulating stomatal closure and seed germination. However, its ABA transport mechanism remains unknown. Here we report the structures of ABCG25 under different states using cryo-electron microscopy single particle analysis: the apo state and ABA-bound state of the wild-type ABCG25 and the ATP-bound state of the ATPase catalytic mutant. ABCG25 forms a homodimer. ABA binds to a cone-shaped, cytosolic-facing cavity formed in the middle of the transmembrane domains. Key residues in ABA binding are identified and verified by a cell-based ABA transport assay. ATP binding leads to closing of the nucleotide-binding domains of opposing monomers and conformational transitions of the transmembrane domains. Together, these results provide insights into the substrate recognition and transport mechanisms of ABCG25 in Arabidopsis, and facilitate our understanding of the ABA transport and signalling pathway in plants.
脱落酸(ABA)是一种植物激素,对植物生长和发育的许多方面的调节至关重要。ABA 的细胞水平对其信号转导至关重要,这取决于其生物合成、分解代谢的速度以及 ABA 运输的速度。拟南芥中的 ABCG25 已被确定为 ABA 外排体,并在调节气孔关闭和种子萌发中发挥作用。然而,其 ABA 运输机制尚不清楚。在这里,我们使用冷冻电镜单颗粒分析报告了不同状态下 ABCG25 的结构:野生型 ABCG25 的apo 状态和 ABA 结合状态以及 ATP 酶催化突变体的 ATP 结合状态。ABCG25 形成同源二聚体。ABA 结合到跨膜结构域中部形成的锥形胞质面腔中。通过基于细胞的 ABA 运输测定鉴定和验证了 ABA 结合的关键残基。ATP 结合导致相反单体的核苷酸结合结构域关闭和跨膜结构域的构象转变。总之,这些结果为拟南芥 ABCG25 的底物识别和运输机制提供了深入的了解,并促进了我们对植物中 ABA 运输和信号通路的理解。