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微囊藻 BicA 转运蛋白正选择的发生。

The occurrence of positive selection on BicA transporter of Microcystis aeruginosa.

机构信息

Department of Life Science, Chung-Ang University, Seoul 06974, Korea.

Department of Life Science, Chung-Ang University, Seoul 06974, Korea.

出版信息

Ecotoxicol Environ Saf. 2024 Sep 15;283:116795. doi: 10.1016/j.ecoenv.2024.116795. Epub 2024 Jul 30.

DOI:10.1016/j.ecoenv.2024.116795
PMID:39083868
Abstract

The rapid growth of cyanobacteria, particularly Microcystis aeruginosa, poses a significant threat to global water security. The proliferation of toxic Microcystis aeruginosa raises concerns due to its potential harm to human health and socioeconomic impacts. Dense blooms contribute to spatiotemporal inorganic carbon depletion, promoting interest in the roles of carbon-concentrating mechanisms (CCMs) for competitive carbon uptake. Despite the importance of HCO transporters, genetic evaluations and functional predictions in M. aeruginosa remain insufficient. In this study, we explored the diversity of HCO transporters in the genomes of 46 strains of M. aeruginosa, assessing positive selection for each. Intriguingly, although the Microcystis BicA transporter became a partial gene in 23 out of 46 genomic strains, we observed significant positive sites. Structural analyses, including predicted 2D and 3D models, confirmed the structural conservation of the Microcystis BicA transporter. Our findings suggest that the Microcystis BicA transport likely plays a crucial role in competitive carbon uptake, emphasizing its ecological significance. The ecological function of the Microcystis BicA transport in competitive growth during cyanobacterial blooms raises important questions. Future studies require experimental confirmation to better understand the role of the Microcysits BicA transporter in cyanobacterial blooms dynamics.

摘要

蓝藻,尤其是铜绿微囊藻的迅速繁殖,对全球水安全构成了重大威胁。由于其对人类健康和社会经济的潜在危害,有毒铜绿微囊藻的大量繁殖引起了人们的关注。密集的水华会导致时空无机碳枯竭,这促使人们对碳浓缩机制(CCMs)在竞争碳吸收中的作用产生了兴趣。尽管 HCO 转运蛋白很重要,但铜绿微囊藻的遗传评估和功能预测仍然不足。在这项研究中,我们探索了 46 株铜绿微囊藻基因组中 HCO 转运蛋白的多样性,并对每种蛋白进行了正选择评估。有趣的是,尽管 46 个基因组菌株中有 23 个的微囊藻 BicA 转运蛋白成为部分基因,但我们观察到了显著的正选择位点。结构分析,包括预测的 2D 和 3D 模型,证实了微囊藻 BicA 转运蛋白的结构保守性。我们的研究结果表明,微囊藻 BicA 转运蛋白可能在竞争碳吸收中发挥着关键作用,强调了其生态意义。微囊藻 BicA 转运蛋白在蓝藻水华期间竞争生长中的生态功能提出了重要的问题。未来的研究需要实验验证,以更好地理解微囊藻 BicA 转运蛋白在蓝藻水华动态中的作用。

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