Structure, biogenesis, and evolution of thylakoid membranes

Author:

Ostermeier Matthias1ORCID,Garibay-Hernández Adriana2ORCID,Holzer Victoria J C1ORCID,Schroda Michael2ORCID,Nickelsen Jörg1ORCID

Affiliation:

1. Molecular Plant Science, LMU Munich , 82152 Planegg-Martinsried , Germany

2. Molecular Biotechnology and Systems Biology, TU Kaiserslautern , 67663 Kaiserslautern , Germany

Abstract

Abstract Cyanobacteria and chloroplasts of algae and plants harbor specialized thylakoid membranes (TMs) that convert sunlight into chemical energy. These membranes house PSII and I, the vital protein-pigment complexes that drive oxygenic photosynthesis. In the course of their evolution, TMs have diversified in structure. However, the core machinery for photosynthetic electron transport remained largely unchanged, with adaptations occurring primarily in the light-harvesting antenna systems. Whereas TMs in cyanobacteria are relatively simple, they become more complex in algae and plants. The chloroplasts of vascular plants contain intricate networks of stacked grana and unstacked stroma thylakoids. This review provides an in-depth view of TM architectures in phototrophs and the determinants that shape their forms, as well as presenting recent insights into the spatial organization of their biogenesis and maintenance. Its overall goal is to define the underlying principles that have guided the evolution of these bioenergetic membranes.

Funder

Deutsche Forschungsgemeinschaft

Collaborative Research Center

Publisher

Oxford University Press (OUP)

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