藻胆酶体降解维持蓝藻碳氮平衡的生理和分子证据。

IF 5.8 2区 生物学 Q1 MARINE & FRESHWATER BIOLOGY
Marine Life Science & Technology Pub Date : 2025-04-25 eCollection Date: 2025-05-01 DOI:10.1007/s42995-025-00290-0
Zhen Luo, Shuangqing Li, Muhammad Zain Ul Arifeen, Fei-Xue Fu, Huayang Gao, Taoran Sun, Lingmei Liu, Xumei Sun, Xinwei Wang, Hai-Bo Jiang
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引用次数: 0

摘要

藻胆异构体(PBS)是蓝藻中主要的光收集复合物,在氮饥饿下降解,为细胞生长提供氮。本研究表明,碳供应是聚球菌PCC 7002在缺氮条件下降解PBS的关键先决条件。即使在缺氮条件下,在缺乏足够的碳的情况下,PBS的降解也受到抑制。我们证明了nblab介导的PBS降解途径和ccmLMNK操纵子介导的co2浓缩机制对PBS降解都是必不可少的。此外,我们的研究结果强调了PBS降解在蓝藻适应高C/N条件中的关键作用。缺乏PBS降解的突变菌株(Mut-nblA和Mut-nblB)表现出对高C/N条件的适应性受损,这证明了它们无法在高NaHCO3(无氮)或二氧化碳(低氮)环境中茁壮成长。虽然与野生型相比,这些突变体在高C/N条件下表现出更绿色的表型,但它们表现出广泛的细胞损伤和光合作用相关基因的显著下调。这些结果为PBS降解的碳依赖调控及其在蓝藻C/N平衡中的重要作用提供了新的见解,突出了其对波动环境条件适应的重要性。补充信息:在线版本包含补充资料,下载地址为10.1007/s42995-025-00290-0。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Physiological and molecular evidence for phycobilisome degradation in maintaining carbon and nitrogen balance of cyanobacteria.

Phycobilisomes (PBS), the primary light-harvesting complexes in cyanobacteria, are degraded under nitrogen starvation to provide nitrogen for cell growth. This study reveals that carbon supply is a critical prerequisite for PBS degradation under nitrogen deficiency in Synechococcus sp. PCC 7002. Even under nitrogen-deficient conditions, PBS degradation is inhibited in the absence of sufficient carbon. We demonstrate that both the nblAB-mediated PBS-degradation pathway and the ccmLMNK operon-mediated CO2-concentrating mechanism are essential for PBS degradation. Furthermore, our findings highlight the critical role of PBS degradation in cyanobacterial adaptation to high C/N conditions. Mutant strains (Mut-nblA and Mut-nblB) deficient in PBS degradation exhibited impaired adaptation to high C/N conditions, as evidenced by their inability to thrive in high NaHCO3 (nitrogen-free) or CO2 (low-nitrogen) environments. While these mutants displayed a greener phenotype under high C/N conditions compared to the wild type, they exhibited extensive cellular damage, and significant downregulation of photosynthesis-related genes. These results provide novel insights into the carbon-dependent regulation of PBS degradation and its essential role in cyanobacterial C/N balance, highlighting its significance for their adaptation to fluctuating environmental conditions.

Supplementary information: The online version contains supplementary material available at 10.1007/s42995-025-00290-0.

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来源期刊
Marine Life Science & Technology
Marine Life Science & Technology MARINE & FRESHWATER BIOLOGY-
CiteScore
9.60
自引率
10.50%
发文量
58
期刊介绍: Marine Life Science & Technology (MLST), established in 2019, is dedicated to publishing original research papers that unveil new discoveries and theories spanning a wide spectrum of life sciences and technologies. This includes fundamental biology, fisheries science and technology, medicinal bioresources, food science, biotechnology, ecology, and environmental biology, with a particular focus on marine habitats. The journal is committed to nurturing synergistic interactions among these diverse disciplines, striving to advance multidisciplinary approaches within the scientific field. It caters to a readership comprising biological scientists, aquaculture researchers, marine technologists, biological oceanographers, and ecologists.
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