Genome-resolved adaptation strategies of Rhodobacterales to changing conditions in the Chesapeake and Delaware Bays.

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2025-01-08 DOI:10.1128/aem.02357-24
Mir Alvee Ahmed, Barbara J Campbell
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引用次数: 0

Abstract

The abundant and metabolically versatile aquatic bacterial order, Rhodobacterales, influences marine biogeochemical cycles. We assessed Rhodobacterales metagenome-assembled genome (MAG) abundance, estimated growth rates, and potential and expressed functions in the Chesapeake and Delaware Bays, two important US estuaries. Phylogenomics of draft and draft/closed Rhodobacterales genomes from this study and others placed 46 nearly complete MAGs from these bays into 11 genera, many were not well characterized. Their abundances varied between the bays and were influenced by temperature, salinity, and silicate and phosphate concentrations. Rhodobacterales genera possessed unique and shared genes for transporters, photoheterotrophy, complex carbon degradation, nitrogen, and sulfur metabolism reflecting their seasonal differences in abundance and activity. Planktomarina genomospecies were more ubiquitous than the more niche specialists, HIMB11, CPC320, LFER01, and MED-G52. Their estimated growth rates were correlated to various factors including phosphate and silicate concentrations, cell density, and light. Metatranscriptomic analysis of four abundant genomospecies commonly revealed that aerobic anoxygenic photoheterotrophy-associated transcripts were highly abundant at night. These Rhodobacterales also differentially expressed genes for CO oxidation and nutrient transport and use between different environmental conditions. Phosphate concentrations and light penetration in the Chesapeake Bay likely contributed to higher estimated growth rates of HIMB11 and LFER01, respectively, in summer where they maintained higher ribosome concentrations and prevented physiological gene expression constraints by downregulating transporter genes compared to the Delaware Bay. Our study highlights the spatial and temporal shifts in estuarine Rhodobacterales within and between these bays reflected through their abundance, unique metabolisms, estimated growth rates, and activity changes.

Importance: In the complex web of global biogeochemical nutrient cycling, the Rhodobacterales emerge as key players, exerting a profound influence through their abundance and dynamic activity. While previous studies have primarily investigated these organisms within marine ecosystems, this study delves into their roles within estuarine environments using a combination of metagenomic and metatranscriptomic analyses. We uncovered a range of Rhodobacterales genera, from generalists to specialists, each exhibiting distinct abundance patterns and gene expression profiles. This diversity equips them with the capacity to thrive amidst the varying environmental conditions encountered within dynamic estuarine habitats. Crucially, our findings illuminate the adaptable nature of estuarine Rhodobacterales, revealing their various energy production pathways and diverse resource management, especially during phytoplankton or algal blooms. Whether adopting a free-living or particle-attached existence, these organisms demonstrate remarkable flexibility in their metabolic strategies, underscoring their pivotal role in driving ecosystem dynamics within estuarine ecosystems.

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切萨皮克湾和特拉华湾红杆菌对不断变化的环境的基因组解析适应策略。
丰富和代谢多样的水生细菌目,红杆菌,影响海洋生物地球化学循环。我们评估了美国两个重要河口切萨皮克湾和特拉华湾的红杆菌宏基因组组装基因组(MAG)丰度、估计生长速率以及潜在和表达功能。本研究和其他人对草稿和草稿/封闭红杆菌基因组的系统基因组学研究将这些海湾的46个几乎完整的mag分为11个属,其中许多尚未得到很好的表征。它们的丰度因海湾而异,并受温度、盐度、硅酸盐和磷酸盐浓度的影响。红杆菌属在转运体、光异养、复杂碳降解、氮和硫代谢方面具有独特和共享的基因,反映了它们在丰度和活性上的季节性差异。浮游生物基因组种比HIMB11、CPC320、LFER01和MED-G52更普遍。它们的估计生长速率与各种因素相关,包括磷酸盐和硅酸盐浓度、细胞密度和光照。对4个丰富的基因组物种的亚转录组学分析表明,有氧无氧光异养相关转录本在夜间高度丰富。这些红杆菌在不同的环境条件下也表达了不同的CO氧化和营养物质运输和利用基因。与特拉华湾相比,切萨皮克湾的磷酸盐浓度和光线穿透可能分别导致了HIMB11和LFER01在夏季较高的估计生长速度,在那里它们保持了较高的核糖体浓度,并通过下调转运体基因来防止生理基因表达限制。我们的研究强调了这些海湾内和海湾之间的河口红杆菌的时空变化,反映在它们的丰度、独特的代谢、估计的生长速率和活动变化上。重要性:在复杂的全球生物地球化学营养循环网络中,红杆菌作为关键角色出现,通过其丰富的数量和动态活动产生深远的影响。虽然以前的研究主要是研究海洋生态系统中的这些生物,但本研究利用宏基因组和亚转录组分析的结合,深入研究了它们在河口环境中的作用。我们发现了一系列红杆菌属,从通才到专才,每个属都表现出不同的丰度模式和基因表达谱。这种多样性使它们有能力在动态河口栖息地遇到的不同环境条件中茁壮成长。至关重要的是,我们的发现阐明了河口红杆菌的适应性,揭示了它们不同的能量生产途径和不同的资源管理,特别是在浮游植物或藻类繁殖期间。无论是采用自由生活还是颗粒附着的方式,这些生物在代谢策略上表现出非凡的灵活性,强调了它们在河口生态系统中驱动生态系统动态的关键作用。
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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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