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异戊二烯合成可保护转基因烟草植物免受氧化应激。

Isoprene synthesis protects transgenic tobacco plants from oxidative stress.

作者信息

Vickers Claudia E, Possell Malcolm, Cojocariu Cristian I, Velikova Violeta B, Laothawornkitkul Jullada, Ryan Annette, Mullineaux Philip M, Nicholas Hewitt C

机构信息

Department of Biological Sciences, Essex University, Wivenhoe Park, Colchester, England C043SQ, UK.

出版信息

Plant Cell Environ. 2009 May;32(5):520-31. doi: 10.1111/j.1365-3040.2009.01946.x. Epub 2009 Jan 22.

Abstract

Isoprene emission represents a significant loss of carbon to those plant species that synthesize this highly volatile and reactive compound. As a tool for studying the role of isoprene in plant physiology and biochemistry, we developed transgenic tobacco plants capable of emitting isoprene in a similar manner to and at rates comparable to a naturally emitting species. Thermotolerance of photosynthesis against transient high-temperature episodes could only be observed in lines emitting high levels of isoprene; the effect was very mild and could only be identified over repetitive stress events. However, isoprene-emitting plants were highly resistant to ozone-induced oxidative damage compared with their non-emitting azygous controls. In ozone-treated plants, accumulation of toxic reactive oxygen species (ROS) was inhibited, and antioxidant levels were higher. Isoprene-emitting plants showed remarkably decreased foliar damage and higher rates of photosynthesis compared to non-emitting plants immediately following oxidative stress events. An inhibition of hydrogen peroxide accumulation in isoprene-emitting plants may stall the programmed cell death response which would otherwise lead to foliar necrosis. These results demonstrate that endogenously produced isoprene provides protection from oxidative damage.

摘要

异戊二烯排放对于那些合成这种高挥发性和反应性化合物的植物物种来说意味着大量的碳损失。作为研究异戊二烯在植物生理和生物化学中作用的一种工具,我们培育了转基因烟草植株,这些植株能够以与自然排放物种相似的方式、以相当的速率排放异戊二烯。只有在排放高水平异戊二烯的品系中才能观察到光合作用对短暂高温事件的耐热性;这种效应非常轻微,只有在重复应激事件中才能识别出来。然而,与不排放异戊二烯的同基因对照相比,排放异戊二烯的植物对臭氧诱导的氧化损伤具有高度抗性。在经臭氧处理的植物中,有毒活性氧(ROS)的积累受到抑制,抗氧化剂水平更高。与氧化应激事件后立即观察到的不排放异戊二烯的植物相比,排放异戊二烯的植物叶片损伤明显减少,光合作用速率更高。异戊二烯排放植物中过氧化氢积累的抑制可能会阻止程序性细胞死亡反应,否则会导致叶片坏死。这些结果表明,内源性产生的异戊二烯提供了对氧化损伤的保护。

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