State Key Laboratory for Quality Ensurance and Sustainable Use of Dao-di Herbs, Experimental Research Center, Chinese Academy of Chinese Medical Sciences (CACMS), Beijing, China; National Resource Center for Chinese Materia Medica, Chinese Academy of Chinese Medical Sciences (CACMS), Beijing, China.
State Key Laboratory for Quality Ensurance and Sustainable Use of Dao-di Herbs, Experimental Research Center, Chinese Academy of Chinese Medical Sciences (CACMS), Beijing, China; National Resource Center for Chinese Materia Medica, Chinese Academy of Chinese Medical Sciences (CACMS), Beijing, China.
Plant Physiol Biochem. 2024 Oct;215:109027. doi: 10.1016/j.plaphy.2024.109027. Epub 2024 Aug 10.
ATP-binding cassette (ABC) transporters are vital for plant growth and development as they facilitate the transport of essential molecules. Despite the family's significance, limited information exists about its functional distinctions in Citrus medica. Our study identified 119 genes encoding ABC transporter proteins in the C. medica genome. Through an evolutionary tree and qPCR analysis, two ABC genes, CmABCB19 and CmABCC10, were implicated in C. medica fruit development, showing upregulation in normal fruits compared to malformed fruits. CmABCB19 was found to localize to the plasma membrane of Nicotiana tabacum, exhibiting indole-3-acetic acid (IAA) efflux activity in the yeast mutant strain yap1. CmABCC10, a tonoplast-localized transporter, exhibited efflux of diosmin, nobiletin, and naringin, with rutin influx in strain ycf1. Transgenic expression of CmABCB19 and CmABCC10 in Arabidopsis thaliana induced alterations in auxin and flavonoid content, impacting silique and seed size. This effect was attributed to the modulation of structural genes in the auxin biosynthesis (YUC5/9, CYP79B2, CYP83B1, SUR1) and flavonoid biosynthesis (4CL2/3, CHS, CHI, FLS1/3) pathways. In summary, the functional characterization of CmABCB19 and CmABCC10 illuminates auxin and flavonoid transport, offering insights into their interplay with biosynthetic pathways and providing a foundation for understanding the transporter's role in fruit development.
ATP 结合盒(ABC)转运蛋白对于植物的生长和发育至关重要,因为它们有助于必需分子的运输。尽管该家族具有重要意义,但关于其在柑橘中的功能差异的信息有限。我们的研究在柑橘基因组中鉴定出了 119 个编码 ABC 转运蛋白的基因。通过进化树和 qPCR 分析,两个 ABC 基因,CmABCB19 和 CmABCC10,被牵连到柑橘果实发育中,与畸形果实相比,在正常果实中表达上调。发现 CmABCB19 定位于烟草原生质体,在酵母突变株 yap1 中表现出吲哚-3-乙酸(IAA)外排活性。CmABCC10 是一种液泡膜定位的转运蛋白,表现出对 diosmin、nobiletin 和 naringin 的外排,以及在 ycf1 菌株中的 rutin 内流。在拟南芥中过表达 CmABCB19 和 CmABCC10 诱导了生长素和类黄酮含量的改变,影响了蒴果和种子的大小。这种效应归因于生长素生物合成(YUC5/9、CYP79B2、CYP83B1、SUR1)和类黄酮生物合成(4CL2/3、CHS、CHI、FLS1/3)途径中结构基因的调节。总之,CmABCB19 和 CmABCC10 的功能特征阐明了生长素和类黄酮的运输,为它们与生物合成途径的相互作用提供了见解,并为理解转运蛋白在果实发育中的作用提供了基础。