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拟南芥质子梯度调节 5 变体光合作用功能的共性和特性。

Commonalities and specialties in photosynthetic functions of PROTON GRADIENT REGULATION5 variants in Arabidopsis.

机构信息

Plant Molecular Biology, Faculty of Biology, Ludwig-Maximilians-Universität München, D-82152 Planegg-Martinsried, Germany.

出版信息

Plant Physiol. 2022 Oct 27;190(3):1866-1882. doi: 10.1093/plphys/kiac362.

Abstract

The PROTON GRADIENT REGULATION5 (PGR5) protein is required for trans-thylakoid proton gradient formation and acclimation to fluctuating light (FL). PGR5 functionally interacts with two other thylakoid proteins, PGR5-like 1 (PGRL1) and 2 (PGRL2); however, the molecular details of these interactions are largely unknown. In the Arabidopsis (Arabidopsis thaliana) pgr5-1 mutant, the PGR5G130S protein accumulates in only small amounts. In this work, we generated a knockout allele of PGR5 (pgr5-Cas) using CRISPR-Cas9 technology. Like pgr5-1, pgr5-Cas is seedling-lethal under FL, but photosynthesis and particularly cyclic electron flow, as well as chlorophyll content, are less severely affected in both pgr5-Cas and pgrl1ab (which lacks PGRL1 and PGR5) than in pgr5-1. These differences are associated with changes in the levels of 260 proteins, including components of the Calvin-Benson cycle, photosystems II and I, and the NDH complex, in pgr5-1 relative to the wild type (WT), pgr5-Cas, and pgrl1ab. Some of the differences between pgr5-1 and the other mutant lines could be tentatively assigned to second-site mutations in the pgr5-1 line, identified by whole-genome sequencing. However, others, particularly the more pronounced photosynthetic defects and PGRL1 depletion (compared to pgr5-Cas), are clearly due to specific negative effects of the amino-acid substitution in PGR5G130S, as demonstrated by complementation analysis. Moreover, pgr5-1 and pgr5-Cas plants are less tolerant to long-term exposure to high light than pgrl1ab plants. These results imply that, in addition to the previously reported necessity of PGRL1 for optimal PGR5 function, PGR5 is required alongside PGRL1 to avoid harmful effects on plant performance.

摘要

PGR5 蛋白是跨类囊体质子梯度形成和适应波动光(FL)所必需的。PGR5 与另外两种类囊体蛋白 PGR5-like1(PGRL1)和 2(PGRL2)相互作用,但这些相互作用的分子细节在很大程度上是未知的。在拟南芥(Arabidopsis thaliana)pgr5-1 突变体中,PGR5G130S 蛋白仅少量积累。在这项工作中,我们使用 CRISPR-Cas9 技术生成了 PGR5 的敲除等位基因(pgr5-Cas)。与 pgr5-1 一样,pgr5-Cas 在 FL 下是幼苗致死的,但光合作用,特别是循环电子流以及叶绿素含量,在 pgr5-Cas 和 pgrl1ab(缺乏 PGRL1 和 PGR5)中受影响比 pgr5-1 中要小得多。这些差异与 260 种蛋白质水平的变化有关,包括卡尔文-本森循环、光系统 II 和 I 以及 NDH 复合物的组成部分,在 pgr5-1 相对于野生型(WT)、pgr5-Cas 和 pgrl1ab 中。pgr5-1 与其他突变体系之间的一些差异可以暂时归因于 pgr5-1 系中的第二点突变,这些突变是通过全基因组测序鉴定的。然而,其他差异,特别是更明显的光合作用缺陷和 PGRL1 耗竭(与 pgr5-Cas 相比),显然是由于 PGR5G130S 中的氨基酸取代的特定负面影响,这是通过互补分析证明的。此外,与 pgrl1ab 植物相比,pgr5-1 和 pgr5-Cas 植物对长期暴露于高光的耐受性较低。这些结果表明,除了先前报道的 PGRL1 对 PGR5 功能的最佳需要外,PGR5 与 PGRL1 一起需要以避免对植物性能的有害影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/252b/9614465/84660825ac03/kiac362f1.jpg

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