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CS3,一个含有 Ycf54 结构域的蛋白,影响水稻(Oryza sativa L.)中的叶绿素合成。

CS3, a Ycf54 domain-containing protein, affects chlorophyll biosynthesis in rice (Oryza sativa L.).

机构信息

State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou, Zhejiang, 310006, China; Key Laboratory for Zhejiang Super Rice Research, China National Rice Research Institute, Hangzhou, Zhejiang, 310006, China.

National Agricultural Technology Extension and Service Center, Beijing, 100125, China.

出版信息

Plant Sci. 2019 Jun;283:11-22. doi: 10.1016/j.plantsci.2019.01.022. Epub 2019 Feb 26.

Abstract

Chlorophyll plays a vital role in harvesting light and turning it into chemical energy. In this study, we isolated and characterized a chlorophyll-deficient mutant, which we named cs3 (chlorotic seedling 3). The cs3 mutant seedlings exhibit a yellowish phenotype at germination, and they do not survive at the seedling stage. In addition, brown necrotic spots appear on the surface of the leaves and leaf sheaths during development. DAB staining and HO content measurement showed that there was excessive HO accumulation in the cs3 mutant leaf. Accompanying the chlorophyll deficiency, the chloroplasts in cs3 leaf cells were abnormal. Using a map-based cloning strategy, we mapped the CS3 gene, which encodes a Ycf54 domain-containing protein, to a locus on chromosome 3. CS3 is mainly expressed in green tissues and the S136 F would influence CS3 interacting with YGL8 and its chloroplast localization. qRT-PCR analysis revealed the changes in the expression of genes involved in chlorophyll biosynthesis and degradation, chloroplast development, senescence, and photosynthesis in the cs3 mutant. In addition, our study also supports the notion that the mutation in the CS3/Ycf54 gene arrests chlorophyll biosynthesis by negatively affecting the activity of magnesium protoporphyrin IX monomethylester cyclase (MgPME-cyclase).

摘要

叶绿素在捕获光并将其转化为化学能方面发挥着至关重要的作用。在本研究中,我们分离并鉴定了一个叶绿素缺失突变体,我们将其命名为 cs3(黄化幼苗 3)。cs3 突变体幼苗在萌发时表现出黄化表型,在幼苗阶段无法存活。此外,在发育过程中叶片和叶鞘表面会出现褐色坏死斑点。DAB 染色和 HO 含量测量表明,cs3 突变体叶片中 HO 积累过多。伴随着叶绿素的缺乏,cs3 叶片细胞中的叶绿体异常。通过基于图谱的克隆策略,我们将 CS3 基因(编码一个含有 Ycf54 结构域的蛋白)定位到 3 号染色体上的一个位点。CS3 主要在绿色组织中表达,S136F 会影响 CS3 与 YGL8 的相互作用及其叶绿体定位。qRT-PCR 分析显示,cs3 突变体中与叶绿素生物合成和降解、叶绿体发育、衰老和光合作用相关的基因表达发生了变化。此外,我们的研究还支持 CS3/Ycf54 基因突变通过负向影响镁原卟啉 IX 单甲酯环化酶(MgPME-cyclase)的活性来阻止叶绿素生物合成的观点。

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