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在全球范围内,皮诺纳米浮游植物光合作用的基因组潜力在功能上是冗余的,但在分类上是有结构的。

The genomic potential of photosynthesis in piconanoplankton is functionally redundant but taxonomically structured at a global scale.

机构信息

Sorbonne Université, CNRS, Laboratoire d'Océanographie de Villefranche, LOV, F-06230 Villefranche-sur-Mer, France.

Sorbonne Université, Muséum National d'Histoire Naturelle, CNRS, EPHE, Université des Antilles, Institut de Systématique, Evolution, Biodiversité (ISYEB), F-75005, Paris, France.

出版信息

Sci Adv. 2024 Aug 16;10(33):eadl0534. doi: 10.1126/sciadv.adl0534.

Abstract

Carbon fixation is a key metabolic function shaping marine life, but the underlying taxonomic and functional diversity involved is only partially understood. Using metagenomic resources targeted at marine piconanoplankton, we provide a reproducible machine learning framework to derive the potential biogeography of genomic functions through the multi-output regression of gene read counts on environmental climatologies. Leveraging the Marine Atlas of Tara Oceans Unigenes, we investigate the genomic potential of primary production in the global ocean. The latter is performed by ribulose-1,5-bisphosphate carboxylase/oxygenase (RUBISCO) and is often associated with carbon concentration mechanisms in piconanoplankton, major marine unicellular photosynthetic organisms. We show that the genomic potential supporting C enzymes and RUBISCO exhibits strong functional redundancy and important affinity toward tropical oligotrophic waters. This redundancy is taxonomically structured by the dominance of Mamiellophyceae and Prymnesiophyceae in mid and high latitudes. These findings enhance our understanding of the relationship between functional and taxonomic diversity of microorganisms and environmental drivers of key biogeochemical cycles.

摘要

碳固定是塑造海洋生命的关键代谢功能,但其中涉及的分类学和功能多样性仅部分被理解。利用针对海洋皮诺浮游生物的宏基因组资源,我们提供了一个可重复使用的机器学习框架,通过基因读取计数与环境气候数据的多输出回归,推导出基因组功能的潜在生物地理学分布。利用 Tara 海洋海洋基因图谱的海洋宏基因,我们研究了全球海洋初级生产的基因组潜力。初级生产由核酮糖-1,5-二磷酸羧化酶/加氧酶(Rubisco)完成,并且通常与皮诺浮游生物中的碳浓缩机制相关联,皮诺浮游生物是海洋中主要的单细胞光合生物。我们表明,支持 C 酶和 Rubisco 的基因组潜力表现出强烈的功能冗余性,并与热带贫营养水域有重要的亲和力。这种冗余性在分类学上由中高纬度的 Mamiellophyceae 和 Prymnesiophyceae 的优势所构建。这些发现增强了我们对微生物功能和分类多样性与关键生物地球化学循环环境驱动因素之间关系的理解。

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