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Rubisco 小亚基及其作为工程靶点的潜力。

The small subunit of Rubisco and its potential as an engineering target.

机构信息

SynthSys & Institute of Molecular Plant Sciences, School of Biological Sciences, King's Buildings, University of Edinburgh, Edingburgh EH9 3BF, UK.

School of Biological Sciences, University of Bristol, 24 Tyndall Avenue, Bristol BS8 1TQ, UK.

出版信息

J Exp Bot. 2023 Jan 11;74(2):543-561. doi: 10.1093/jxb/erac309.

Abstract

Rubisco catalyses the first rate-limiting step in CO2 fixation and is responsible for the vast majority of organic carbon present in the biosphere. The function and regulation of Rubisco remain an important research topic and a longstanding engineering target to enhance the efficiency of photosynthesis for agriculture and green biotechnology. The most abundant form of Rubisco (Form I) consists of eight large and eight small subunits, and is found in all plants, algae, cyanobacteria, and most phototrophic and chemolithoautotrophic proteobacteria. Although the active sites of Rubisco are located on the large subunits, expression of the small subunit regulates the size of the Rubisco pool in plants and can influence the overall catalytic efficiency of the Rubisco complex. The small subunit is now receiving increasing attention as a potential engineering target to improve the performance of Rubisco. Here we review our current understanding of the role of the small subunit and our growing capacity to explore its potential to modulate Rubisco catalysis using engineering biology approaches.

摘要

核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)催化 CO2 固定的第一个限速步骤,是生物界中存在的绝大多数有机碳的主要贡献者。Rubisco 的功能和调控仍然是一个重要的研究课题,也是提高农业和绿色生物技术中光合作用效率的一个长期工程目标。最丰富的 Rubisco 形式(Form I)由八个大亚基和八个小亚基组成,存在于所有植物、藻类、蓝细菌以及大多数光合和化能自养的变形菌中。尽管 Rubisco 的活性位点位于大亚基上,但小亚基的表达调节了植物中 Rubisco 池的大小,并可能影响 Rubisco 复合物的整体催化效率。小亚基作为一种提高 Rubisco 性能的潜在工程目标,正受到越来越多的关注。本文综述了我们目前对小亚基作用的认识,以及我们利用工程生物学方法探索其调节 Rubisco 催化作用的潜力的不断增长的能力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41ea/9833052/4ba32a2d8191/erac309f0001.jpg

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