蓝藻对磷酸盐限制的适应性反应:以海洋重氮营养菌为重点

IF 4.3 2区 生物学 Q2 MICROBIOLOGY Environmental microbiology Pub Date : 2024-12-23 DOI:10.1111/1462-2920.70023
Chloé Caille, Solange Duhamel, Amel Latifi, Sophie Rabouille
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引用次数: 0

摘要

磷是许多大分子的重要组成部分,对生命至关重要。其可得性显著影响初级生产,特别是在少营养环境中。海洋重氮营养蓝藻通过固氮在生物地球化学循环中发挥关键作用,已经适应在磷酸盐(Pi)贫困地区茁壮成长。然而,促进它们适应这种条件的分子机制仍然不完全清楚。细菌已经进化出各种策略来应对π的限制,包括检测π的有效性,利用高亲和力的π转运体,以及用各种酶水解溶解的有机磷(DOP)。这篇综述综合了目前关于蓝藻如何适应Pi短缺的知识,特别强调了亚热带海洋自由生活重氮营养体及其利用多种DOP分子的能力。组学方法,如(元)基因组学和(元)转录组学,揭示了海洋重氮营养体面对π短缺的恢复能力,并强调了进一步研究其分子适应策略的必要性。对Pi限制的适应往往与蓝藻对多种限制和压力的更广泛的反应交织在一起。这强调了了解Pi适应对于评估这些关键微生物在动态环境中的生态恢复力的重要性,特别是在全球气候变化的背景下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Adaptive Responses of Cyanobacteria to Phosphate Limitation: A Focus on Marine Diazotrophs

Phosphorus is an essential component of numerous macromolecules and is vital for life. Its availability significantly influences primary production, particularly in oligotrophic environments. Marine diazotrophic cyanobacteria, which play key roles in biogeochemical cycles through nitrogen fixation (N2 fixation), have adapted to thrive in phosphate (Pi)-poor areas. However, the molecular mechanisms that facilitate their adaptation to such conditions remain incompletely understood. Bacteria have evolved various strategies to cope with Pi limitation, including detecting Pi availability, utilising high-affinity Pi transporters, and hydrolyzing dissolved organic phosphorus (DOP) with various enzymes. This review synthesises current knowledge regarding how cyanobacteria adapt to Pi scarcity, with particular emphasis on subtropical marine free-living diazotrophs and their ability to utilise diverse DOP molecules. Omics approaches, such as (meta)genomics and (meta)transcriptomics, reveal the resilience of marine diazotrophs in the face of Pi scarcity and highlight the need for further research into their molecular adaptive strategies. Adaptation to Pi limitation is often intertwined with the broader response of cyanobacteria to multiple limitations and stresses. This underscores the importance of understanding Pi adaptation to assess the ecological resilience of these crucial microorganisms in dynamic environments, particularly in the context of global climate change.

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来源期刊
Environmental microbiology
Environmental microbiology 环境科学-微生物学
CiteScore
9.90
自引率
3.90%
发文量
427
审稿时长
2.3 months
期刊介绍: Environmental Microbiology provides a high profile vehicle for publication of the most innovative, original and rigorous research in the field. The scope of the Journal encompasses the diversity of current research on microbial processes in the environment, microbial communities, interactions and evolution and includes, but is not limited to, the following: the structure, activities and communal behaviour of microbial communities microbial community genetics and evolutionary processes microbial symbioses, microbial interactions and interactions with plants, animals and abiotic factors microbes in the tree of life, microbial diversification and evolution population biology and clonal structure microbial metabolic and structural diversity microbial physiology, growth and survival microbes and surfaces, adhesion and biofouling responses to environmental signals and stress factors modelling and theory development pollution microbiology extremophiles and life in extreme and unusual little-explored habitats element cycles and biogeochemical processes, primary and secondary production microbes in a changing world, microbially-influenced global changes evolution and diversity of archaeal and bacterial viruses new technological developments in microbial ecology and evolution, in particular for the study of activities of microbial communities, non-culturable microorganisms and emerging pathogens
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