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反向遗传学鉴定 CRN1 及其在拟南芥叶绿素降解中的独特作用。

Reverse genetic identification of CRN1 and its distinctive role in chlorophyll degradation in Arabidopsis.

机构信息

State Key Laboratory of Genetic Engineering, Institute of Plant Biology, School of Life Sciences, Fudan University, Shanghai 200433, China.

出版信息

J Integr Plant Biol. 2010 May;52(5):496-504. doi: 10.1111/j.1744-7909.2010.00945.x.

Abstract

Recent identification of NYE1/SGR1 brought up a new era for the exploration of the regulatory mechanism of Chlorophyll (Chl) degradation. Cluster analysis of senescence associated genes with putative chloroplast targeting sequences revealed several genes sharing a similar expression pattern with NYE1. Further characterization of available T-DNA insertion lines led to the discovery of a novel stay-green gene CRN1 (Co-regulated with NYE1). Chl breakdown was significantly restrained in crn1-1 under diversified senescence scenarios, which is comparable with that in acd1-20, but much more severe than that in nye1-1. Notably, various Chl binding proteins, especially trimeric LHCP II, were markedly retained in crn1-1 four days after dark-treatment, possibly due to a lesion in disassociation of protein-pigment complex. Nevertheless, the photochemical efficiency of PSII in crn1-1 declined, even more rapidly, two days after dark-treatment, compared to those in Col-0 and nye1-1. Our results suggest that CRN1 plays a crucial role in Chl degradation, and that loss of its function produces various side-effects, including those on the breakdown of Ch-protein complex and the maintenance of the residual photosynthetic capability during leaf senescence.

摘要

最近 NYE1/SGR1 的鉴定为叶绿素(Chl)降解的调控机制研究开启了一个新时代。与衰老相关基因的聚类分析,以及假定的叶绿体靶向序列,揭示了几个与 NYE1 具有相似表达模式的基因。对现有 T-DNA 插入系的进一步表征导致发现了一个新的持绿基因 CRN1(与 NYE1 共调控)。在多种衰老情况下,CRN1 缺失突变体 crn1-1 中的 Chl 降解明显受到抑制,这与 acd1-20 相似,但比 nye1-1 严重得多。值得注意的是,在黑暗处理四天后,各种 Chl 结合蛋白,特别是三聚体 LHCP II,在 crn1-1 中明显保留,这可能是由于蛋白-色素复合物解离的损伤。然而,与 Col-0 和 nye1-1 相比,crn1-1 中的 PSII 光化学效率在黑暗处理两天后下降得更快。我们的结果表明,CRN1 在 Chl 降解中起着关键作用,其功能丧失会产生各种副作用,包括 Chl-蛋白复合物的降解和叶片衰老过程中剩余光合能力的维持。

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