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Confocal imaging of glutathione redox potential in living plant cells.活植物细胞中谷胱甘肽氧化还原电位的共聚焦成像
J Microsc. 2008 Aug;231(2):299-316. doi: 10.1111/j.1365-2818.2008.02030.x.
2
Redox-sensitive GFP in Arabidopsis thaliana is a quantitative biosensor for the redox potential of the cellular glutathione redox buffer.拟南芥中对氧化还原敏感的绿色荧光蛋白是一种用于检测细胞谷胱甘肽氧化还原缓冲液氧化还原电位的定量生物传感器。
Plant J. 2007 Dec;52(5):973-86. doi: 10.1111/j.1365-313X.2007.03280.x. Epub 2007 Sep 22.
3
Interorganellar communication.细胞器间通讯
Curr Opin Plant Biol. 2007 Dec;10(6):600-6. doi: 10.1016/j.pbi.2007.07.007. Epub 2007 Aug 23.
4
Double mutants deficient in cytosolic and thylakoid ascorbate peroxidase reveal a complex mode of interaction between reactive oxygen species, plant development, and response to abiotic stresses.胞质和类囊体抗坏血酸过氧化物酶缺陷的双突变体揭示了活性氧、植物发育和对非生物胁迫响应之间复杂的相互作用模式。
Plant Physiol. 2007 Aug;144(4):1777-85. doi: 10.1104/pp.107.101436. Epub 2007 Jun 7.
5
Mitochondrial retrograde regulation in plants.植物中的线粒体逆行调控
Mitochondrion. 2007 May;7(3):177-94. doi: 10.1016/j.mito.2007.01.002. Epub 2007 Jan 18.
6
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7
Oxidative modifications to cellular components in plants.植物细胞成分的氧化修饰。
Annu Rev Plant Biol. 2007;58:459-81. doi: 10.1146/annurev.arplant.58.032806.103946.
8
Stress-induced morphogenic responses: growing out of trouble?应激诱导的形态发生反应:摆脱困境?
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9
The metabolic response of heterotrophic Arabidopsis cells to oxidative stress.异养型拟南芥细胞对氧化应激的代谢反应。
Plant Physiol. 2007 Jan;143(1):312-25. doi: 10.1104/pp.106.090431. Epub 2006 Nov 22.
10
Plant glutathione peroxidases are functional peroxiredoxins distributed in several subcellular compartments and regulated during biotic and abiotic stresses.植物谷胱甘肽过氧化物酶是功能性过氧化物酶,分布于多个亚细胞区室,并在生物和非生物胁迫期间受到调控。
Plant Physiol. 2006 Dec;142(4):1364-79. doi: 10.1104/pp.106.089458. Epub 2006 Oct 27.

锰超氧化物歧化酶的减少会导致根系生长减缓,并影响三羧酸循环通量和线粒体氧化还原稳态。

Decrease in manganese superoxide dismutase leads to reduced root growth and affects tricarboxylic acid cycle flux and mitochondrial redox homeostasis.

作者信息

Morgan Megan J, Lehmann Martin, Schwarzländer Markus, Baxter Charles J, Sienkiewicz-Porzucek Agata, Williams Thomas C R, Schauer Nicolas, Fernie Alisdair R, Fricker Mark D, Ratcliffe R George, Sweetlove Lee J, Finkemeier Iris

机构信息

Department of Plant Sciences, University of Oxford, Oxford OX1 3RB, United Kingdom.

出版信息

Plant Physiol. 2008 May;147(1):101-14. doi: 10.1104/pp.107.113613. Epub 2008 Mar 12.

DOI:10.1104/pp.107.113613
PMID:18337490
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2330298/
Abstract

Superoxide dismutases (SODs) are key components of the plant antioxidant defense system. While plastidic and cytosolic isoforms have been extensively studied, the importance of mitochondrial SOD at a cellular and whole-plant level has not been established. To address this, transgenic Arabidopsis (Arabidopsis thaliana) plants were generated in which expression of AtMSD1, encoding the mitochondrial manganese (Mn)SOD, was suppressed by antisense. The strongest antisense line showed retarded root growth even under control growth conditions. There was evidence for a specific disturbance of mitochondrial redox homeostasis in seedlings grown in liquid culture: a mitochondrially targeted redox-sensitive green fluorescent protein was significantly more oxidized in the MnSOD-antisense background. In contrast, there was no substantial change in oxidation of cytosolically targeted redox-sensitive green fluorescent protein, nor changes in antioxidant defense components. The consequences of altered mitochondrial redox status of seedlings were subtle with no widespread increase of mitochondrial protein carbonyls or inhibition of mitochondrial respiratory complexes. However, there were specific inhibitions of tricarboxylic acid (TCA) cycle enzymes (aconitase and isocitrate dehydrogenase) and an inhibition of TCA cycle flux in isolated mitochondria. Nevertheless, total respiratory CO2 output of seedlings was not decreased, suggesting that the inhibited TCA cycle enzymes can be bypassed. In older, soil-grown plants, redox perturbation was more pronounced with changes in the amount and/or redox poise of ascorbate and glutathione. Overall, the results demonstrate that reduced MnSOD affects mitochondrial redox balance and plant growth. The data also highlight the flexibility of plant metabolism with TCA cycle inhibition having little effect on overall respiratory rates.

摘要

超氧化物歧化酶(SODs)是植物抗氧化防御系统的关键组成部分。虽然质体和胞质同工型已被广泛研究,但线粒体SOD在细胞和整株植物水平上的重要性尚未明确。为了解决这个问题,构建了转基因拟南芥植株,其中编码线粒体锰(Mn)SOD的AtMSD1的表达通过反义技术被抑制。最强的反义株系即使在对照生长条件下根生长也受到抑制。有证据表明,在液体培养中生长的幼苗中线粒体氧化还原稳态受到特异性干扰:一种定位于线粒体的氧化还原敏感绿色荧光蛋白在MnSOD反义背景下被显著氧化。相比之下,定位于胞质的氧化还原敏感绿色荧光蛋白的氧化没有实质性变化,抗氧化防御成分也没有变化。幼苗线粒体氧化还原状态改变的后果很细微,线粒体蛋白羰基没有普遍增加,线粒体呼吸复合体也没有受到抑制。然而,三羧酸(TCA)循环酶(乌头酸酶和异柠檬酸脱氢酶)有特异性抑制,分离线粒体中的TCA循环通量也受到抑制。尽管如此,幼苗的总呼吸CO2输出量没有减少,这表明受抑制的TCA循环酶可以被绕过。在土壤中生长的 older 植株中,氧化还原扰动更为明显,抗坏血酸和谷胱甘肽的量和/或氧化还原平衡发生了变化。总体而言,结果表明MnSOD减少会影响线粒体氧化还原平衡和植物生长。数据还突出了植物代谢的灵活性,TCA循环抑制对总体呼吸速率影响很小。