National Institute of Plant Genome Research, Aruna Asaf Ali Marg, New Delhi 110067, India.
National Centre for Biological Sciences, Tata Institute of Fundamental Research, Bangalore, Karnataka 560065, India.
Plant Cell. 2019 Jul;31(7):1539-1562. doi: 10.1105/tpc.19.00057. Epub 2019 May 10.
Cellular calcium elevation is an important signal used by plants for recognition and signaling of environmental stress. Perception of the generalist insect, , by Arabidopsis () activates cytosolic Ca elevation, which triggers downstream defense. However, not all the Ca channels generating the signal have been identified, nor are their modes of action known. We report on a rapidly activated, leaf vasculature- and plasma membrane-localized, CYCLIC NUCLEOTIDE GATED CHANNEL19 (CNGC19), which activates herbivory-induced Ca flux and plant defense. Loss of function results in decreased herbivory defense. The mutant shows aberrant and attenuated intravascular Ca fluxes. CNGC19 is a Ca-permeable channel, as hyperpolarization of CNGC19-expressing oocytes in the presence of both cyclic adenosine monophosphate and Ca results in Ca influx. Breakdown of Ca-based defense in mutants leads to a decrease in herbivory-induced jasmonoyl-l-isoleucine biosynthesis and expression of JA responsive genes. The mutants are deficient in aliphatic glucosinolate accumulation and hyperaccumulate its precursor, methionine. CNGC19 modulates aliphatic glucosinolate biosynthesis in tandem with BRANCHED-CHAIN AMINO ACID TRANSAMINASE4, which is involved in the chain elongation pathway of Met-derived glucosinolates. Furthermore, CNGC19 interacts with herbivory-induced CALMODULIN2 in planta. Together, our work reveals a key mechanistic role for the Ca channel CNGC19 in the recognition of herbivory and the activation of defense signaling.
细胞内钙离子升高是植物用于识别和信号环境胁迫的重要信号。拟南芥对非专食性昆虫 的感知会激活细胞质钙离子升高,从而引发下游防御。然而,尚未鉴定出产生该信号的所有钙离子通道,也不知道它们的作用方式。我们报告了一种快速激活的、位于叶维管束和质膜上的环核苷酸门控通道 19(CNGC19),它可以激活草食性诱导的钙离子流和植物防御。 功能丧失会导致防御作用减弱。 突变体表现出异常和减弱的血管内钙离子流。CNGC19 是一种钙离子通透通道,因为在环磷酸腺苷和钙离子存在的情况下,表达 CNGC19 的卵母细胞的超极化会导致钙离子内流。 突变体中基于钙的防御机制的破坏导致草食性诱导的茉莉酸-l-异亮氨酸生物合成和 JA 响应基因的表达减少。 突变体缺乏脂肪硫苷的积累,并且其前体蛋氨酸过度积累。CNGC19 与 BRANCHED-CHAIN AMINO ACID TRANSAMINASE4 一起调节脂肪硫苷的生物合成,后者参与 Met 衍生硫苷的链延长途径。此外,CNGC19 在体内与草食性诱导的钙调蛋白 2 相互作用。总之,我们的工作揭示了钙离子通道 CNGC19 在识别草食性和激活防御信号中的关键作用机制。