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光系统II核心磷酸化和光合适应需要两种不同的蛋白激酶。

Photosystem II core phosphorylation and photosynthetic acclimation require two different protein kinases.

作者信息

Bonardi Vera, Pesaresi Paolo, Becker Thomas, Schleiff Enrico, Wagner Raik, Pfannschmidt Thomas, Jahns Peter, Leister Dario

机构信息

Botanisches Institut, Department Biologie I, Ludwig-Maximilians-Universität, Menzinger Strasse 67, 80638 München, Germany.

出版信息

Nature. 2005 Oct 20;437(7062):1179-82. doi: 10.1038/nature04016.

DOI:10.1038/nature04016
PMID:16237446
Abstract

Illumination changes elicit modifications of thylakoid proteins and reorganization of the photosynthetic machinery. This involves, in the short term, phosphorylation of photosystem II (PSII) and light-harvesting (LHCII) proteins. PSII phosphorylation is thought to be relevant for PSII turnover, whereas LHCII phosphorylation is associated with the relocation of LHCII and the redistribution of excitation energy (state transitions) between photosystems. In the long term, imbalances in energy distribution between photosystems are counteracted by adjusting photosystem stoichiometry. In the green alga Chlamydomonas and the plant Arabidopsis, state transitions require the orthologous protein kinases STT7 and STN7, respectively. Here we show that in Arabidopsis a second protein kinase, STN8, is required for the quantitative phosphorylation of PSII core proteins. However, PSII activity under high-intensity light is affected only slightly in stn8 mutants, and D1 turnover is indistinguishable from the wild type, implying that reversible protein phosphorylation is not essential for PSII repair. Acclimation to changes in light quality is defective in stn7 but not in stn8 mutants, indicating that short-term and long-term photosynthetic adaptations are coupled. Therefore the phosphorylation of LHCII, or of an unknown substrate of STN7, is also crucial for the control of photosynthetic gene expression.

摘要

光照变化会引发类囊体蛋白的修饰以及光合机构的重组。短期内,这涉及光系统II(PSII)和捕光(LHCII)蛋白的磷酸化。PSII磷酸化被认为与PSII的周转有关,而LHCII磷酸化与LHCII的重新定位以及光系统之间激发能的重新分配(状态转换)相关。长期来看,光系统之间能量分布的不平衡通过调整光系统化学计量来抵消。在绿藻衣藻和植物拟南芥中,状态转换分别需要直系同源蛋白激酶STT7和STN7。我们在此表明,在拟南芥中,第二种蛋白激酶STN8是PSII核心蛋白定量磷酸化所必需的。然而,在高强度光照下,stn8突变体中的PSII活性仅受到轻微影响,并且D1周转与野生型没有区别,这意味着可逆蛋白磷酸化对于PSII修复并非必不可少。stn7突变体对光质变化的适应存在缺陷,但stn8突变体则没有,这表明短期和长期的光合适应是相互关联的。因此,LHCII的磷酸化,或者STN7的未知底物的磷酸化,对于光合基因表达的控制也至关重要。

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