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2
Mapping proteome-wide targets of protein kinases in plant stress responses.绘制植物应激反应中蛋白激酶的全蛋白质组靶标。
Proc Natl Acad Sci U S A. 2020 Feb 11;117(6):3270-3280. doi: 10.1073/pnas.1919901117. Epub 2020 Jan 28.
3
MAP3Kinase-dependent SnRK2-kinase activation is required for abscisic acid signal transduction and rapid osmotic stress response.MAP3Kinase 依赖性 SnRK2-kinase 的激活对于脱落酸信号转导和快速渗透胁迫反应是必需的。
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Assessment of Subcellular ROS and NO Metabolism in Higher Plants: Multifunctional Signaling Molecules.高等植物中亚细胞活性氧和一氧化氮代谢的评估:多功能信号分子
Antioxidants (Basel). 2019 Dec 12;8(12):641. doi: 10.3390/antiox8120641.
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Knockout of SlMAPK3 enhances tolerance to heat stress involving ROS homeostasis in tomato plants.SlMAPK3 的敲除增强了番茄植株对热应激的耐受性,涉及 ROS 稳态。
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Plant Physiol Biochem. 2019 Aug;141:353-369. doi: 10.1016/j.plaphy.2019.04.039. Epub 2019 May 7.
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Gamma irradiation protect the developing wheat endosperm from oxidative damage by balancing the trade-off between the defence network and grains quality.伽马辐照通过平衡防御网络和谷物品质之间的权衡,来保护发育中的小麦胚乳免受氧化损伤。
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8
Overexpression of a Mitogen-Activated Protein Kinase Positively Regulates Tomato Tolerance to Cadmium and Drought Stress.过表达一种丝裂原活化蛋白激酶正向调控番茄对镉和干旱胁迫的耐受性。
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Genome-scale identification, classification, and tissue specific expression analysis of late embryogenesis abundant (LEA) genes under abiotic stress conditions in Sorghum bicolor L.高粱非生物胁迫条件下的 late embryogenesis abundant (LEA) 基因的全基因组鉴定、分类和组织特异性表达分析
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10
Disordered Protein Kinase Regions in Regulation of Kinase Domain Cores.蛋白激酶结构域无序区对激酶结构域核心的调控
Trends Biochem Sci. 2019 Apr;44(4):300-311. doi: 10.1016/j.tibs.2018.12.002. Epub 2019 Jan 2.

丝裂原活化蛋白激酶(MAPK)酶:一种活性氧激活的信号传感器,参与调节热胁迫下小麦的热胁迫反应、耐受性和籽粒稳定性。

MAPK Enzymes: a ROS Activated Signaling Sensors Involved in Modulating Heat Stress Response, Tolerance and Grain Stability of Wheat under Heat Stress.

作者信息

Kumar Ranjeet R, Arora Kirti, Goswami Suneha, Sakhare Akshay, Singh Bhupinder, Chinnusamy Viswanathan, Praveen Shelly

机构信息

Division of Biochemistry, Indian Agricultural Research Institute, New Delhi, 110012 India.

Division of Plant Physiology, Indian Agricultural Research Institute, New Delhi, 110012 India.

出版信息

3 Biotech. 2020 Sep;10(9):380. doi: 10.1007/s13205-020-02377-0. Epub 2020 Aug 7.

DOI:10.1007/s13205-020-02377-0
PMID:32802722
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7413960/
Abstract

Mitogen-activated protein kinase (MAPK) signaling cascade is highly conserved across the species triggering the self-adjustment of the cells by transmitting the external signals to the nucleus. The cascade consists of MAPK kinase kinases (MAPKKKs), MAPK kinases (MAPKKs) and MAPKs. These kinases are functionally interrelated through activation by sequential phosphorylation. MAPK cascade is involved in modulating the tolerance and regulating the growth and developmental processes in plants through transcriptional programming. The cascade has been well characterized in Arabidopsis, Tobacco and rice, but limited information is available in wheat due to complexity of genome. MAPK-based sensors have been reported to be highly specific for the external or intracellular stimuli activating specific TF, stress-associated genes (SAGs) and stress-associated proteins (SAPs) linked with heat-stress tolerance and other biological functions especially size, number and quality of grains. Even, MAPKs have been reported to influence the activity of ATP-binding cassette (ABC) transporter superfamily involved in stabilizing the quality of the grains under adverse conditions. Wheat has also diverse network of MAPKs involved in transcriptional reprogramming upon sensing the terminal HS and in turn protect the plants. Current review mainly focuses on the role of MAPKs as signaling sensor and modulator of defense mechanism for mitigating the effect of heat on plants with focus on wheat. It also indirectly protects the nutrient depletion from the grains under heat stress. MAPKs, lying at pivotal positions, can be utilized for manipulating the heat-stress response (HSR) of wheat to develop plant for future (P4F).

摘要

丝裂原活化蛋白激酶(MAPK)信号级联在物种间高度保守,通过将外部信号传递至细胞核来触发细胞的自我调节。该信号级联由MAPK激酶激酶(MAPKKKs)、MAPK激酶(MAPKKs)和MAPK组成。这些激酶通过顺序磷酸化激活而在功能上相互关联。MAPK信号级联通过转录编程参与调节植物的耐受性以及调控其生长和发育过程。该信号级联在拟南芥、烟草和水稻中已得到充分表征,但由于小麦基因组的复杂性,相关信息有限。据报道,基于MAPK的传感器对激活特定转录因子(TF)、与热胁迫耐受性及其他生物学功能(特别是籽粒大小、数量和质量)相关的胁迫相关基因(SAGs)和胁迫相关蛋白(SAPs)的外部或细胞内刺激具有高度特异性。甚至,据报道MAPK会影响ATP结合盒(ABC)转运蛋白超家族的活性,该超家族在不利条件下参与稳定籽粒质量。小麦也有多种MAPK网络,在感知终端热胁迫时参与转录重编程,进而保护植物。当前综述主要聚焦于MAPK作为信号传感器和防御机制调节剂在减轻热对植物(尤其是小麦)影响方面的作用。它还间接保护热胁迫下籽粒中的养分消耗。处于关键位置的MAPK可用于操控小麦的热胁迫反应(HSR),以培育未来植物(P4F)。