Department of Plant Molecular Biology, University of Delhi South Campus, Benito Juarez Road, Dhaula Kuan, New Delhi 110021, India.
Nuclear Agriculture and Biotechnology Division, Bhabha Atomic Research Centre, Mumbai 400085, India.
Int J Biol Macromol. 2023 Apr 15;234:123522. doi: 10.1016/j.ijbiomac.2023.123522. Epub 2023 Feb 8.
Glutamate receptors like channels (GLRs) are ligand gated non-selective cation channels and are multigenic in nature. They are homologs of mammalian ionic glutamate receptors (iGLRs) that play an important role in neurotransmission. It has been more than 25 years of discovery of plant GLRs, since then, significant progress has been made to unravel their structure and function in plants. Recently, the first crystal structure of plant GLR has been resolved that suggests that, though, plant GLRs contain the conserved signature domains of iGLRs, their unique features enable agonist/antagonist-dependent change in their activity. GLRs exhibit diverse subcellular localization and undergo dynamic expression variation in response to developmental and environmental stress conditions in plants. The combined use of genetic, electrophysiology and calcium imaging using different genetically encoded calcium indicators has revealed that GLRs are involved in generating calcium (Ca) influx across the plasma membrane and are involved in shaping the Ca signature in response to different developmental and environmental stimuli. These findings indicate that GLRs influence cytosolic Ca dynamics, thus, highlighting "GLR-Ca-crosstalk (GCC)" in developmental and stress-responsive signaling pathways. With this background, the present review summarises the recent developments pertaining to GLR function, in the broader context of regulation of stress tolerance in plants.
谷氨酸受体(GLRs)像通道一样,是配体门控非选择性阳离子通道,本质上是多基因的。它们是哺乳动物离子型谷氨酸受体(iGLRs)的同源物,在神经递质传递中发挥着重要作用。自发现植物 GLRs 以来已经超过 25 年了,在这期间,人们在阐明它们在植物中的结构和功能方面取得了重大进展。最近,解析了第一个植物 GLR 的晶体结构,表明尽管植物 GLRs 包含 iGLRs 的保守特征结构域,但它们独特的特征使它们的活性能够受到激动剂/拮抗剂的依赖变化。GLRs 表现出多样化的亚细胞定位,并在植物的发育和环境胁迫条件下发生动态表达变化。遗传、电生理学和使用不同的基因编码钙指示剂的钙成像的综合使用表明,GLRs 参与了跨质膜的钙内流,并参与了响应不同发育和环境刺激的钙特征的形成。这些发现表明,GLRs 影响细胞质 Ca 动力学,因此强调了发育和应激反应信号通路中的“GLR-Ca 串扰(GCC)”。在此背景下,本综述总结了 GLR 功能的最新进展,更广泛地涉及植物耐应激调节。