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Nitric oxide as a key component in hormone-regulated processes.一氧化氮作为激素调节过程中的关键组成部分。
Plant Cell Rep. 2013 Jun;32(6):853-66. doi: 10.1007/s00299-013-1434-1. Epub 2013 Apr 13.
2
Nitrated cyclic GMP modulates guard cell signaling in Arabidopsis.硝态氮调节拟南芥保卫细胞信号转导。
Plant Cell. 2013 Feb;25(2):558-71. doi: 10.1105/tpc.112.105049. Epub 2013 Feb 8.
3
Calcium/calmodulin-mediated regulation of plant immunity.钙/钙调蛋白介导的植物免疫调节
Biochim Biophys Acta. 2013 Jul;1833(7):1766-71. doi: 10.1016/j.bbamcr.2013.01.031. Epub 2013 Feb 1.
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Protein control of S-nitrosothiol reactivity: interplay of antagonistic resonance structures.蛋白质对 S-亚硝基硫醇反应性的控制:拮抗共振结构的相互作用。
J Phys Chem B. 2013 Feb 14;117(6):1827-37. doi: 10.1021/jp310664z. Epub 2013 Jan 31.
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Regulatory role of nitric oxide in lipopolysaccharides-triggered plant innate immunity.一氧化氮在脂多糖触发的植物先天免疫中的调节作用。
Plant Signal Behav. 2013 Jan;8(1):e22554. doi: 10.4161/psb.22554. Epub 2012 Dec 6.
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Linking ligand perception by PEPR pattern recognition receptors to cytosolic Ca2+ elevation and downstream immune signaling in plants.将植物中 PEPR 模式识别受体对配体的感知与细胞溶质 Ca2+ 升高和下游免疫信号联系起来。
Proc Natl Acad Sci U S A. 2012 Nov 27;109(48):19852-7. doi: 10.1073/pnas.1205448109. Epub 2012 Nov 12.
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Nitric oxide inhibits the ATPase activity of the chaperone-like AAA+ ATPase CDC48, a target for S-nitrosylation in cryptogein signalling in tobacco cells.一氧化氮抑制伴侣样 AAA+ ATP 酶 CDC48 的 ATP 酶活性,CDC48 是 cryptogein 信号通路中烟草细胞 S-亚硝基化的靶标。
Biochem J. 2012 Oct 15;447(2):249-60. doi: 10.1042/BJ20120257.
8
Protein S-nitrosylation: what's going on in plants?蛋白质 S-亚硝基化:植物中发生了什么?
Free Radic Biol Med. 2012 Sep 1;53(5):1101-10. doi: 10.1016/j.freeradbiomed.2012.06.032. Epub 2012 Jun 30.
9
Arabidopsis annexin1 mediates the radical-activated plasma membrane Ca²+- and K+-permeable conductance in root cells.拟南芥 annexin1 介导线粒体自由基激活的质膜 Ca²+-和 K+-通透性电导。
Plant Cell. 2012 Apr;24(4):1522-33. doi: 10.1105/tpc.112.097881. Epub 2012 Apr 20.
10
A sleigh ride through the SNO: regulation of plant immune function by protein S-nitrosylation.通过 SNO 雪橇之旅:蛋白质 S-亚硝基化对植物免疫功能的调节。
Curr Opin Plant Biol. 2012 Aug;15(4):424-30. doi: 10.1016/j.pbi.2012.03.005. Epub 2012 Mar 28.

画面远不止表面所见:一氧化氮与 Ca2+信号的串扰。

There's more to the picture than meets the eye: nitric oxide cross talk with Ca2+ signaling.

机构信息

AgroSup Dijon, UMR 1347 Agroécologie, BP 86510, F-21000 Dijon, France.

出版信息

Plant Physiol. 2013 Oct;163(2):459-70. doi: 10.1104/pp.113.220624. Epub 2013 Jun 7.

DOI:10.1104/pp.113.220624
PMID:23749853
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3793028/
Abstract

Calcium and nitric oxide (NO) are two important biological messengers. Increasing evidence indicates that Ca(2+) and NO work together in mediating responses to pathogenic microorganisms and microbe-associated molecular patterns. Ca(2+) fluxes were recognized to account for NO production, whereas evidence gathered from a number of studies highlights that NO is one of the key messengers mediating Ca(2+) signaling. Here, we present a concise description of the current understanding of the molecular mechanisms underlying the cross talk between Ca(2+) and NO in plant cells exposed to biotic stress. Particular attention will be given to the involvement of cyclic nucleotide-gated ion channels and Ca(2+) sensors. Notably, we provide new evidence that calmodulin might be regulated at the posttranslational level by NO through S-nitrosylation. Furthermore, we report original transcriptomic data showing that NO produced in response to oligogalacturonide regulates the expression of genes related to Ca(2+) signaling. Deeper insight into the molecules involved in the interplay between Ca(2+) and NO not only permits a better characterization of the Ca(2+) signaling system but also allows us to further understand how plants respond to pathogen attack.

摘要

钙和一氧化氮(NO)是两种重要的生物信使。越来越多的证据表明,Ca(2+)和 NO 共同介导对病原体和微生物相关分子模式的反应。Ca(2+)流被认为是 NO 产生的原因,而许多研究的证据则强调,NO 是介导 Ca(2+)信号的关键信使之一。在这里,我们简要描述了在生物胁迫下暴露于生物胁迫的植物细胞中 Ca(2+)和 NO 之间串扰的分子机制的当前理解。将特别关注环核苷酸门控离子通道和 Ca(2+)传感器的参与。值得注意的是,我们提供了新的证据表明,NO 通过 S-亚硝基化可能在翻译后水平调节钙调蛋白的活性。此外,我们报告了原始转录组数据,表明寡聚半乳糖醛酸响应产生的 NO 调节与 Ca(2+)信号相关的基因的表达。深入了解 Ca(2+)和 NO 相互作用涉及的分子不仅可以更好地描述 Ca(2+)信号系统,还可以帮助我们进一步了解植物对病原体攻击的反应。