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与聚球藻的生物相互作用:对海洋碳循环的影响。

Biological interactions with Prochlorococcus: implications for the marine carbon cycle.

机构信息

Department of Ocean Science, The Hong Kong University of Science and Technology, Hong Kong, China; Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai), Zhuhai, China.

Department of Ocean Science, The Hong Kong University of Science and Technology, Hong Kong, China; HKUST Shenzhen-Hong Kong Collaborative Innovation Research Institute, Shenzhen, China.

出版信息

Trends Microbiol. 2024 Mar;32(3):280-291. doi: 10.1016/j.tim.2023.08.011. Epub 2023 Sep 17.

Abstract

The unicellular picocyanobacterium Prochlorococcus is the most abundant photoautotroph and contributes substantially to global CO fixation. In the vast euphotic zones of the open ocean, Prochlorococcus converts CO into organic compounds and supports diverse organisms, forming an intricate network of interactions that regulate the magnitude of carbon cycling and storage in the ocean. An understanding of the biological interactions with Prochlorococcus is critical for accurately estimating the contributions of Prochlorococcus and interacting organisms to the marine carbon cycle. This review synthesizes the primary production contributed by Prochlorococcus in the global ocean. We outline recent progress on the interactions of Prochlorococcus with heterotrophic bacteria, phages, and grazers that multifacetedly determine Prochlorococcus carbon production and fate. We discuss that climate change might affect the biological interactions with Prochlorococcus and thus the marine carbon cycle.

摘要

单细胞微微型蓝细菌原绿球藻是最丰富的光合自养生物,对全球 CO 固定有重要贡献。在开阔海洋的透光带中,原绿球藻将 CO 转化为有机化合物,并为多种生物提供支持,形成了一个复杂的相互作用网络,调节着海洋碳循环和储存的规模。了解与原绿球藻的生物相互作用对于准确估计原绿球藻和相互作用的生物对海洋碳循环的贡献至关重要。本综述综合了全球海洋中原绿球藻的初级生产力。我们概述了原绿球藻与异养细菌、噬菌体和食草动物相互作用的最新进展,这些相互作用多方面决定了原绿球藻的碳生产和命运。我们讨论了气候变化可能会影响与原绿球藻的生物相互作用,从而影响海洋碳循环。

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