Heterologous expression in E. coli reveals that bicarbonate transporter BicA2 mediates carbon uptake in marine Prochlorococcus spp.

IF 10.2 1区 环境科学与生态学 Q1 ECOLOGY
Loraine M Rourke, Caitlin S Byrt, G Dean Price, Benedict M Long
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引用次数: 0

Abstract

The widespread oceanic cyanobacterial Prochlorococcus genus is a major contributor to global carbon fixation, yet mechanisms enabling this lineage to elevate intracellular inorganic carbon as a substrate for photosynthesis remain unresolved. Cyanobacterial CO2-concentrating mechanisms typically rely on membrane-bound bicarbonate (HCO3-) transporters SbtA1, SbtA2, BicA and BCT1, and CO2-to-HCO3- conversion uptake systems (CO2 pumps; NDH-I3 and NDH-I4), to elevate a cellular HCO3- pool for use by Rubisco-containing carboxysomes. Evidence suggests Prochlorococcus harbours carboxysomes with a low-CO2-specificity Rubisco, implying a functional CCM dependent on active HCO3- uptake. However, canonical CO2 pumps are absent, leaving distant HCO3- transporter homologues, BicA2 and SbtA2, as prime candidates for HCO3- transport in this group. Yet these have not been functionally characterised. Here we demonstrate that BicA2 from P. marinus CCMP1375 mediates Na+-dependent HCO3- uptake in E. coli, whereas BicA2 from P. marinus CCMP1986 is inactive in its native form but acquired transport function through a single amino acid substitution during adaptive laboratory evolution. These findings confirm BicA2 as a low-affinity, Na+-dependent bicarbonate transporter with variable flux, revealing a previously uncharacterized CCM component in Prochlorococcus. This mechanistic insight reshapes our understanding of carbon acquisition strategies in the most abundant photosynthetic organism on Earth and highlights evolutionary plasticity in transporter function with implications for global biogeochemical cycles.

大肠杆菌中的异源表达揭示了碳酸氢盐转运体BicA2介导海洋原绿球藻的碳吸收。
广泛分布的海洋蓝藻原绿球藻属是全球碳固定的主要贡献者,但使该谱系能够提高细胞内无机碳作为光合作用底物的机制仍未解决。蓝藻的二氧化碳浓缩机制通常依赖于膜结合碳酸氢盐(HCO3-)转运体SbtA1、SbtA2、BicA和BCT1,以及二氧化碳到HCO3-的转化吸收系统(二氧化碳泵;NDH-I3和NDH-I4),以提升细胞HCO3-池,供含rubisco的羧酸体使用。有证据表明原绿球藻含有具有低co2特异性Rubisco的羧酶体,这意味着功能性CCM依赖于活跃的HCO3-摄取。然而,典型的CO2泵缺失,使得远距离的HCO3-转运同源物BicA2和SbtA2成为该群体中HCO3-转运的主要候选者。然而,这些都没有得到功能上的描述。在这里,我们证明了来自P. marinus CCMP1375的BicA2介导了大肠杆菌中Na+依赖性HCO3-的摄取,而来自P. marinus CCMP1986的BicA2在其天然形式下是无活性的,但在适应性实验室进化过程中通过单一氨基酸替换获得了转运功能。这些发现证实了BicA2是一种低亲和力、Na+依赖性的碳酸氢盐转运体,具有可变通量,揭示了原绿球藻中以前未被表征的CCM成分。这种机制的见解重塑了我们对地球上最丰富的光合生物中碳获取策略的理解,并强调了转运体功能的进化可塑性,对全球生物地球化学循环具有影响。
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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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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