Hydrocarbons Are Essential for Optimal Cell Size, Division, and Growth of Cyanobacteria

类囊体 蓝藻 光合作用 联合球菌 生物 光系统 生物化学 藻胆体 突变体 生物物理学 联合囊肿 化学 叶绿体 细菌 光系统II 基因 遗传学
作者
David J. Lea‐Smith,Maite L. Ortiz-Suarez,Tchern Lenn,Dennis J. Nürnberg,Laura L. Baers,Matthew P. Davey,Lucia Parolini,Roland G. Huber,Charles A. R. Cotton,Giulia Mastroianni,Paolo Bombelli,Petra Ungerer,Tim J. Stevens,Alison G. Smith,Peter J. Bond,Conrad W. Mullineaux,Christopher J. Howe
出处
期刊:Plant Physiology [Oxford University Press]
卷期号:172 (3): 1928-1940 被引量:66
标识
DOI:10.1104/pp.16.01205
摘要

Cyanobacteria are intricately organized, incorporating an array of internal thylakoid membranes, the site of photosynthesis, into cells no larger than other bacteria. They also synthesize C15-C19 alkanes and alkenes, which results in substantial production of hydrocarbons in the environment. All sequenced cyanobacteria encode hydrocarbon biosynthesis pathways, suggesting an important, undefined physiological role for these compounds. Here, we demonstrate that hydrocarbon-deficient mutants of $\textit{Synechocystis }$ sp. PCC 7002 and $\textit{Synechocystis }$ sp. PCC 6803 exhibit significant phenotypic differences from wild type, including enlarged cell size, reduced growth, and increased division defects. Photosynthetic rates were similar between strains, although a minor reduction in energy transfer between the soluble light harvesting phycobilisome complex and membrane-bound photosystems was observed. Hydrocarbons were shown to accumulate in thylakoid and cytoplasmic membranes. Modeling of membranes suggests these compounds aggregate in the center of the lipid bilayer, potentially promoting membrane flexibility and facilitating curvature. In vivo measurements confirmed that $\textit{Synechocystis }$ sp. PCC 7002 mutants lacking hydrocarbons exhibit reduced thylakoid membrane curvature compared to wild type. We propose that hydrocarbons may have a role in inducing the flexibility in membranes required for optimal cell division, size, and growth, and efficient association of soluble and membrane bound proteins. The recent identification of C15-C17 alkanes and alkenes in microalgal species suggests hydrocarbons may serve a similar function in a broad range of photosynthetic organisms.
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