Li Jiajing, Shen Yuanyue
College of Plant Science and Technology, Beijing University of Agriculture, Beijing, China.
College of Plant Science and Technology, Beijing University of Agriculture, Beijing, China.
J Biol Chem. 2023 Oct;299(10):105250. doi: 10.1016/j.jbc.2023.105250. Epub 2023 Sep 13.
Abscisic acid (ABA) is a critical regulator for nonclimacteric fruit ripening such as in the model plant of strawberry (Fragaria × ananassa). Although FaRRP1 is proposed to participate in clathrin-mediated endocytosis of ABA, its action molecular mechanisms in ABA signaling are not fully understood. Here, using our isolated FaRRP1 (ripening-regulation protein) and candidate ABA receptor FaPYL2 and FaABAR from strawberry fruit, a series of silico and molecular interaction analyses demonstrate that they all bind to ABA, and FaRRP1 binds both FaPYL2 and FaABAR; by contrast, the binding affinity of FaRRP1 to FaPYL2 is relatively higher. Interestingly, the binding of FaRRP1 to FaPYL2 and FaABAR affects the perception affinity to ABA. Furthermore, exogenous ABA application and FaRRP1 transgenic analyses confirm that FaRRP1 participates in clathrin-mediated endocytosis and vesicle transport. Importantly, FaRRP1, FaPYL2, and FaABAR all trigger the initiation of strawberry fruit ripening at physiological and molecular levels. In conclusion, FaRRP1 not only binds to ABA but also affects the binding affinity of FaPYL2 and FaABAR to ABA, thus promoting strawberry fruit ripening. Our findings provide novel insights into the role of FaRRP1 in ABA trafficking and signaling, at least in strawberry, a model plant for nonclimacteric fruit ripening.
脱落酸(ABA)是诸如草莓(Fragaria × ananassa)这种非跃变型果实成熟的关键调节因子。尽管已提出FaRRP1参与网格蛋白介导的ABA内吞作用,但其在ABA信号传导中的作用分子机制尚未完全明确。在此,利用我们从草莓果实中分离得到的FaRRP1(成熟调控蛋白)以及候选ABA受体FaPYL2和FaABAR,一系列的计算机模拟和分子相互作用分析表明它们均能与ABA结合,且FaRRP1能同时结合FaPYL2和FaABAR;相比之下,FaRRP1与FaPYL2的结合亲和力相对较高。有趣的是,FaRRP1与FaPYL2和FaABAR的结合会影响对ABA的感知亲和力。此外,外源ABA处理和FaRRP1转基因分析证实FaRRP1参与网格蛋白介导的内吞作用和囊泡运输。重要的是,FaRRP1、FaPYL2和FaABAR均在生理和分子水平上触发草莓果实成熟的起始。总之,FaRRP1不仅能与ABA结合,还会影响FaPYL2和FaABAR与ABA的结合亲和力,从而促进草莓果实成熟。我们的研究结果为FaRRP1在ABA运输和信号传导中的作用提供了新的见解,至少在非跃变型果实成熟的模式植物草莓中是如此。