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C4植物中双形叶绿体的电子显微镜观察

Electron Microscopy Views of Dimorphic Chloroplasts in C4 Plants.

作者信息

Mai Keith Ka Ki, Gao Peng, Kang Byung-Ho

机构信息

Centre for Cell and Developmental Biology, State Key Laboratory for Agrobiotechnology, School of Life Sciences, The Chinese University of Hong Kong, Hong Kong, Hong Kong.

出版信息

Front Plant Sci. 2020 Jul 3;11:1020. doi: 10.3389/fpls.2020.01020. eCollection 2020.

Abstract

C4 plants enhance photosynthesis efficiency by concentrating CO to the site of Rubisco action. Chloroplasts in C4 plants exhibit structural dimorphism because thylakoid architectures vary depending on energy requirements. Advances in electron microscopy imaging capacity and sample preparation technologies allowed characterization of thylakoid structures and their macromolecular arrangements with unprecedented precision mostly in C3 plants. The thylakoid is assembled during chloroplast biogenesis through collaboration between the plastid and nuclear genomes. Recently, the membrane dynamics involved in the assembly process has been investigated with 3D electron microscopy, and molecular factors required for thylakoid construction have been characterized. The two classes of chloroplasts in C4 plants arise from common precursors, but little is known about how a single type of chloroplasts grow, divide, and differentiate to mature into distinct chloroplasts. Here, we outline the thylakoid structure and its assembly processes in C3 plants to discuss ultrastructural analyses of dimorphic chloroplast biogenesis in C4 plant species. Future directions for electron microscopy research of C4 photosynthetic systems are also proposed.

摘要

C4植物通过将二氧化碳浓缩到核酮糖-1,5-二磷酸羧化酶(Rubisco)的作用位点来提高光合作用效率。C4植物中的叶绿体呈现出结构二态性,因为类囊体结构会根据能量需求而变化。电子显微镜成像能力和样品制备技术的进步使得人们能够以前所未有的精度对类囊体结构及其大分子排列进行表征,这主要是在C3植物中实现的。类囊体是在叶绿体生物发生过程中通过质体和核基因组之间的协作组装而成的。最近,利用三维电子显微镜对组装过程中涉及的膜动力学进行了研究,并且已经确定了类囊体构建所需的分子因子。C4植物中的两类叶绿体起源于共同的前体,但对于单一类型的叶绿体如何生长、分裂并分化为成熟的不同叶绿体,人们了解甚少。在这里,我们概述了C3植物中的类囊体结构及其组装过程,以讨论C4植物物种中双态叶绿体生物发生的超微结构分析。还提出了C4光合系统电子显微镜研究的未来方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2e7/7350421/d2308700edb4/fpls-11-01020-g001.jpg

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