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腐胺,一种应对渗透胁迫耐受性的快速作用开关。

Putrescine, a fast-acting switch for tolerance against osmotic stress.

作者信息

Kotakis Christos, Theodoropoulou Eleftheria, Tassis Konstantinos, Oustamanolakis Charalambos, Ioannidis Nikolaos E, Kotzabasis Kiriakos

机构信息

Department of Biology, University of Crete, Voutes University Campus, GR-70013 Heraklion, Crete, Greece.

Department of Biology, University of Crete, Voutes University Campus, GR-70013 Heraklion, Crete, Greece.

出版信息

J Plant Physiol. 2014 Jan 15;171(2):48-51. doi: 10.1016/j.jplph.2013.09.015. Epub 2013 Nov 12.

Abstract

During the last decade we showed clearly that abiotic stress changes the cellular composition of polyamines, which in turn regulate the photochemical and non-photochemical quenching of the received light energy in the photosynthetic apparatus and that modulate substantially the level of plant tolerance. In the present contribution, we tried to change the bioenergetics of the leaf discs before the exposure to osmotic stress only by exogenously supplied putrescine, in order to enhance quickly the tolerance against the abiotic stress. Tobacco leaf discs treated with polyethylene-glycol reduced their water content about 24% within 1h. This relatively mild osmotic stress increased endogenous putrescine about 83% and decreased maximum photosystem II photochemical efficiency about 14%. In line with this, here we show that treatment with 1mM exogenous putrescine 1h before polyethylene-glycol addition protects the photochemical capacity and inhibits loss of water, confirming the key role of putrescine in the modulation of plant tolerance against osmotic stress. Furthermore, our recent works indicate that putrescine is accumulated in lumen during light reactions and may act as a permeable buffer and an osmolyte.

摘要

在过去十年中,我们清楚地表明,非生物胁迫会改变多胺的细胞组成,进而调节光合装置中接收光能的光化学和非光化学猝灭,并极大地调节植物的耐受水平。在本论文中,我们试图仅通过外源供应腐胺来改变叶盘在遭受渗透胁迫之前的生物能量学,以便快速提高对非生物胁迫的耐受性。用聚乙二醇处理的烟草叶盘在1小时内水分含量降低了约24%。这种相对温和的渗透胁迫使内源性腐胺增加了约83%,并使最大光系统II光化学效率降低了约14%。与此一致的是,我们在此表明,在添加聚乙二醇前1小时用1mM外源腐胺处理可保护光化学能力并抑制水分流失,证实了腐胺在调节植物对渗透胁迫的耐受性中的关键作用。此外,我们最近的研究表明,腐胺在光反应过程中积累在类囊体腔中,并可能作为一种可渗透的缓冲剂和渗透剂。

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