Chandola Udita, Gaudin Marinna, Trottier Camille, Lavier-Aydat Louis-Josselin, Manirakiza Eric, Menicot Samuel, Fischer Erik Jörg, Louvet Isabelle, Lacour Thomas, Chaumier Timothée, Tanaka Atsuko, Pohnert Georg, Chaffron Samuel, Tirichine Leïla
UMR 6286, F-44000, Nantes Université, CNRS, Nantes, US2B, France.
UMR 6004, Nantes Université, École Centrale Nantes, CNRS, Nantes, LS2 N, France.
Genome Biol. 2025 May 28;26(1):146. doi: 10.1186/s13059-025-03597-4.
Non-cyanobacteria diazotrophs (NCDs) are shown to dominate in surface waters shifting the long-held paradigm of cyanobacteria dominance. This raises fundamental questions on how these putative heterotrophic bacteria thrive in sunlit oceans. The absence of laboratory cultures of these bacteria significantly limits our ability to understand their behavior in natural environments and, consequently, their contribution to the marine nitrogen cycle.
Here, via a multidisciplinary approach, we identify the presence of NCDs within the phycosphere of the model diatom Phaeodactylum tricornutum (Pt), which sustain the survival of Pt in nitrogen-depleted conditions. Through bacterial metacommunity sequencing and genome assembly, we identify multiple NCDs belonging to the Rhizobiales order, including Bradyrhizobium, Mesorhizobium, Georhizobium, and Methylobacterium. We demonstrate the nitrogen-fixing ability of PtNCDs through in silico identification of nitrogen fixation genes and by other experimental assays. We show the wide occurrence of this type of interactions with the isolation of NCDs from other microalgae, their identification in the environment, and their predicted associations with photosynthetic microalgae.
Our study underscores the importance of microalgae interactions with NCDs to support nitrogen fixation. This work provides a unique model Pt-NCDs to study the ecology of this interaction, advancing our understanding of the key drivers of global marine nitrogen fixation.
非蓝藻固氮菌(NCDs)在地表水占主导地位,这改变了长期以来蓝藻占主导的范式。这引发了关于这些假定的异养细菌如何在阳光照射的海洋中生存的基本问题。这些细菌缺乏实验室培养物,这严重限制了我们了解它们在自然环境中的行为的能力,进而限制了我们了解它们对海洋氮循环贡献的能力。
在这里,通过多学科方法,我们确定了模式硅藻三角褐指藻(Pt)的藻际中存在NCDs,它们在缺氮条件下维持了Pt的生存。通过细菌元群落测序和基因组组装,我们鉴定出多个属于根瘤菌目的NCDs,包括慢生根瘤菌属、中生根瘤菌属、地生根瘤菌属和甲基杆菌属。我们通过对固氮基因的计算机鉴定和其他实验分析,证明了PtNCDs的固氮能力。我们通过从其他微藻中分离NCDs、在环境中鉴定它们以及预测它们与光合微藻之间形成的关联,展示了这种相互作用的广泛存在。
我们的研究强调了微藻与NCDs相互作用对支持固氮的重要性。这项工作提供了一个独特的Pt-NCDs模型来研究这种相互作用的生态学,增进了我们对全球海洋固氮关键驱动因素的理解。