Liaoning Key Laboratory of Marine Fishery Molecular Biology, Liaoning Key Lab of Germplasm Improvement and Fine Seed Breeding of Marine Aquatic Animals, Liaoning Ocean and Fisheries Science Research Institute, Dalian, Liaoning, People's Republic of China.
Dalian Salt Chemical Group Co., Ltd, Dalian, Liaoning, People's Republic of China.
Environ Microbiol Rep. 2023 Dec;15(6):545-556. doi: 10.1111/1758-2229.13188. Epub 2023 Aug 3.
Salinity is an important environmental factor in microbial ecology for affecting the microbial communities in diverse environments. Understanding the salinity adaptation mechanisms of a microbial community is a significant issue, while most previous studies only covered a narrow salinity range. Here, variations in seawater prokaryotic communities during the whole salt drying progression (salinity from 3% to 25%) were investigated. According to high-throughput sequencing results, the diversity, composition, and function of seawater prokaryotic communities varied significantly along the salinity gradient, expressing as decreased diversity, enrichment of some halophilic archaea, and powerful nitrate reduction in samples with high salt concentrations. More importantly, a sudden and dramatic alteration of prokaryotic communities was observed when salinity reached 16%, which was recognized as the change point. Combined with the results of network analysis, we found the increasing of complexity but decreasing of stability in prokaryotic communities when salinity exceeded the change point. Moreover, prokaryotic communities became more deterministic when salinity exceeded the change point due to the niche adaptation of halophilic species. Our study showed that substantial variations in seawater prokaryotic communities along an extremely wide salinity gradient, and also explored the underlying mechanisms regulating these changes.
盐度是微生物生态学中的一个重要环境因素,影响着不同环境中的微生物群落。了解微生物群落的耐盐机制是一个重要的问题,然而大多数先前的研究仅涵盖了较窄的盐度范围。在这里,我们研究了海水原核生物群落在整个盐干燥过程(盐度从 3%到 25%)中的变化。根据高通量测序结果,海水原核生物群落的多样性、组成和功能沿盐度梯度发生了显著变化,表现为多样性降低、一些嗜盐古菌的富集以及高盐浓度样品中强大的硝酸盐还原。更重要的是,当盐度达到 16%时,观察到原核生物群落的突然和剧烈变化,这被认为是转折点。结合网络分析的结果,我们发现当盐度超过转折点时,原核生物群落的复杂性增加而稳定性降低。此外,由于嗜盐物种的生态位适应,当盐度超过转折点时,原核生物群落变得更加确定。我们的研究表明,海水原核生物群落沿着极其广泛的盐度梯度发生了巨大变化,并探索了调节这些变化的潜在机制。