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机械胁迫导致的根系生长减缓涉及拟南芥中乙烯介导的微管重排和跨膜受体介导的信号转导。

The root growth reduction in response to mechanical stress involves ethylene-mediated microtubule reorganization and transmembrane receptor-mediated signal transduction in Arabidopsis.

机构信息

Graduate School of Natural Science and Technology, Okayama University, Okayama, 700-8530, Japan.

Laboratoire de Reproduction Et Développement Des Plantes, Université de Lyon, ENS de Lyon, UCB Lyon 1, CNRS, INRAE, Lyon, France.

出版信息

Plant Cell Rep. 2021 Mar;40(3):575-582. doi: 10.1007/s00299-020-02653-6. Epub 2021 Jan 13.

DOI:10.1007/s00299-020-02653-6
PMID:33439322
Abstract

We found that mutations in a Ca-permeable mechanosensitive channel MCA1, an ethylene-regulated microtubule-associated protein WDL5, and a versatile co-receptor BAK1 affect root growth response to mechanical stress. Plant root tips exposed to mechanical impedance show a temporal reduction in the elongation growth. The process involves a transient Ca increase in the cytoplasm followed by ethylene signaling. To dissect the molecular mechanisms underlying this response, we examined the root growth of a series of Arabidopsis mutants with potentially altered response to mechanical stress after transfer from vertical to horizontal plates that were covered by dialysis membrane as an impedance. Among the plant hormone-response mutants tested, the ethylene-insensitive mutant ein3 was confirmed to show no growth reduction after the transfer. The root growth reduction was attenuated in a mutant of MCA1 encoding a Ca-permeable mechanosensitive channel and that of WDL5 encoding an ethylene-regulated microtubule-associated protein. We also found that the growth reduction was enhanced in a mutant of BAK1 encoding a co-receptor that pairs with numerous leucine-rich repeat receptor kinases to modulate growth and immunity. These results suggest the root growth reduction in response to mechanical stress involves ethylene-mediated microtubule reorganization and also transmembrane receptor-mediated signal transduction.

摘要

我们发现,钙渗透性机械敏感通道 MCA1、乙烯调控的微管相关蛋白 WDL5 和多功能共受体 BAK1 的突变会影响植物根系对机械应激的生长反应。暴露于机械阻抗的植物根尖表现出伸长生长的暂时减少。这个过程涉及细胞质中瞬态 Ca 增加,随后是乙烯信号转导。为了解析这种反应的分子机制,我们检查了一系列拟南芥突变体的根生长,这些突变体在从垂直板转移到水平板后,可能对机械应激的反应发生了改变,水平板上覆盖着透析膜作为阻抗。在测试的植物激素反应突变体中,乙烯不敏感突变体 ein3 被证实转移后生长没有减少。编码钙渗透性机械敏感通道的 MCA1 突变体和编码乙烯调控的微管相关蛋白的 WDL5 突变体的根生长减少得到了缓解。我们还发现,编码与众多富含亮氨酸重复受体激酶配对以调节生长和免疫的共受体的 BAK1 突变体的生长减少增强。这些结果表明,机械应激引起的根生长减少涉及乙烯介导的微管重组以及跨膜受体介导的信号转导。

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