National Institute of Plant Genome Research, New Delhi 110067, India.
National Institute of Plant Genome Research, New Delhi 110067, India.
Int J Biol Macromol. 2021 Feb 1;169:264-273. doi: 10.1016/j.ijbiomac.2020.12.102. Epub 2020 Dec 15.
Phospholipases D (PLDs) are phospholipid hydrolyzing enzymes and crucial components of lipid signaling in plants. PLDs are implicated in stress responses in different plants however, characterization of PLDs in chickpea is missing. Here, we identify 13 PLD genes in the chickpea genome. PLD family could be divided into α, β, δ, ε and ζ isoforms based on sequence and structure. Protein remodeling described that chickpea PLDs are composed of defined arrangements of α-helix, β-sheets and short loops. Phylogenetic analysis suggested evolutionary conservation of chickpea PLD family with dicots. In-planta subcellular localization showed the plasma membrane localization of chickpea PLDs. All PLD promoters had hormone and stress related cis-regulatory elements, which suggested overlapping function of PLDs in hormone and abiotic stress signaling. The qRT-PCR expression analysis revealed that most PLD genes are differentially expressed in multiple abiotic stresses (drought, salt and cold stress). Moreover, several PLD genes had overlapping expression in abiotic stress and ABA and JA treatment. These observations indicate the involvement of PLD gene family in cross-talk of phytohormone and abiotic stress signaling in chickpea. Thus, present study opens new avenues of utilizing PLD related information for understanding hormone-regulated abiotic stress signaling in legume crops.
磷脂酶 D(PLD)是一种磷脂水解酶,是植物脂质信号转导的关键组成部分。PLD 参与了不同植物的应激反应,但鹰嘴豆中 PLD 的特征尚未确定。在这里,我们在鹰嘴豆基因组中鉴定了 13 个 PLD 基因。根据序列和结构,PLD 家族可分为α、β、δ、ε和ζ同工型。蛋白质重塑表明,鹰嘴豆 PLD 由确定的α-螺旋、β-折叠和短环排列组成。系统发育分析表明,鹰嘴豆 PLD 家族与双子叶植物具有进化保守性。在植物体内亚细胞定位显示,鹰嘴豆 PLD 位于质膜上。所有 PLD 启动子都具有激素和应激相关的顺式调控元件,这表明 PLD 在激素和非生物胁迫信号转导中具有重叠功能。qRT-PCR 表达分析显示,大多数 PLD 基因在多种非生物胁迫(干旱、盐和冷胁迫)下表达差异。此外,一些 PLD 基因在非生物胁迫和 ABA 和 JA 处理中表达重叠。这些观察结果表明,PLD 基因家族参与了鹰嘴豆中植物激素和非生物胁迫信号转导的串扰。因此,本研究为利用与 PLD 相关的信息来理解豆科作物中激素调节的非生物胁迫信号转导开辟了新的途径。