National Institute of Plant Genome Research, Aruna Asaf Ali Marg, New Delhi, 110067, India.
National Institute of Plant Genome Research, Aruna Asaf Ali Marg, New Delhi, 110067, India.
Plant Physiol Biochem. 2024 Jun;211:108712. doi: 10.1016/j.plaphy.2024.108712. Epub 2024 May 7.
Phosphorus (P), a macronutrient, plays key roles in plant growth, development, and yield. Phosphate (Pi) transporters (PHTs) and PHOSPHATE1 (PHO1) are central to Pi acquisition and distribution. Potentially, PHO1 is also involved in signal transduction under low P. The current study was designed to identify and functionally characterize the PHO1 gene family in chickpea (CaPHO1s). Five CaPHO1 genes were identified through a comprehensive genome-wide search. Phylogenetically, CaPHO1s formed two clades, and protein sequence analyses confirmed the presence of conserved domains. CaPHO1s are expressed in different plant organs including root nodules and are induced by Pi-limiting conditions. Functional complementation of atpho1 mutant with three CaPHO1 members, CaPHO1, CaPHO1;like, and CaPHO1;H1, independently demonstrated their role in root to shoot Pi transport, and their redundant functions. To further validate this, we raised independent RNA-interference (RNAi) lines of CaPHO1, CaPHO1;like, and CaPHO1;H1 along with triple mutant line in chickpea. While single gene RNAi lines behaved just like WT, triple knock-down RNAi lines (capho1/like/h1) showed reduced shoot growth and shoot Pi content. Lastly, we showed that CaPHO1s are involved in root nodule development and Pi content. Our findings suggest that CaPHO1 members function redundantly in root to shoot Pi export and root nodule development in chickpea.
磷(P)是一种大量营养素,在植物生长、发育和产量中起着关键作用。磷酸盐(Pi)转运蛋白(PHTs)和 PHOSPHATE1(PHO1)是 Pi 摄取和分配的核心。潜在地,PHO1 也参与低 P 下的信号转导。本研究旨在鉴定和功能表征鹰嘴豆中的 PHO1 基因家族(CaPHO1s)。通过全面的全基因组搜索,鉴定了 5 个 CaPHO1 基因。系统发育分析表明,CaPHO1 分为两个分支,蛋白质序列分析证实了保守结构域的存在。CaPHO1 在不同的植物器官中表达,包括根瘤,并受 Pi 限制条件诱导。用三个 CaPHO1 成员 CaPHO1、CaPHO1-like 和 CaPHO1;H1 对 atpho1 突变体的功能互补独立证明了它们在根到地上部 Pi 转运中的作用及其冗余功能。为了进一步验证这一点,我们在鹰嘴豆中独立地培育了 CaPHO1、CaPHO1-like 和 CaPHO1;H1 的 RNA 干扰(RNAi)系以及三重突变系。虽然单个基因 RNAi 系的行为与 WT 相似,但三重敲低 RNAi 系(capho1/like/h1)的地上部生长和地上部 Pi 含量降低。最后,我们表明 CaPHO1 参与根瘤发育和 Pi 含量。我们的研究结果表明,CaPHO1 成员在鹰嘴豆中根到地上部 Pi 输出和根瘤发育中具有冗余功能。