Cluster of Microbial Ecology, Groningen Institute for Evolutionary Life Sciences (GELIFES), University of Groningen, Nijenborg 7, 9747 AG, Groningen, The Netherlands.
Chengdu Academy of Governance, Longquanyi District, Chengdu, Sichuan, China.
Sci Data. 2024 Oct 17;11(1):1140. doi: 10.1038/s41597-024-03961-2.
Soil microbes are key drivers of ecosystem processes promoting nutrient cycling, system productivity, and resilience. While much is known about the roles of microbes in established systems, their impact on soil development and the successional transformation over time remains poorly understood. Here, we provide 67 diverse, rhizosphere-associated Pseudomonas draft genomes from an undisturbed salt march primary succession spanning >100 years of soil development. Pseudomonas are cosmopolitan bacteria with a significant role in plant establishment and growth. We obtained isolates associated with Limonium vulgare and Artemisia maritima, two typical salt marsh perennial plants with roles in soil stabilization, salinity regulation, and biodiversity support. We anticipate that our data, in combination with the provided physiochemical measurements, will help identify genomic signatures associated with the different selective regimes along the successional stages, such as varying soil complexity, texture, and nutrient availability. Such findings would advance our understanding of Pseudomonas' role in natural soil ecosystems and provide the basis for a better understanding of the roles of microbes throughout ecosystem transformations.
土壤微生物是促进养分循环、系统生产力和恢复力的生态系统过程的关键驱动因素。虽然人们对已建立系统中微生物的作用有了很多了解,但它们对土壤发育的影响以及随着时间的推移的演替转化仍然知之甚少。在这里,我们提供了 67 个来自未受干扰盐沼原生演替的根际相关假单胞菌的草图基因组,该演替跨越了超过 100 年的土壤发育。假单胞菌是具有在植物定植和生长中起重要作用的世界性细菌。我们获得了与黄菖蒲和滨藜两种典型盐沼多年生植物相关的分离物,它们在土壤稳定、盐分调节和生物多样性支持方面发挥作用。我们预计,我们的数据,结合提供的理化测量结果,将有助于确定与演替阶段不同选择机制相关的基因组特征,例如土壤复杂性、质地和养分供应的变化。这些发现将增进我们对假单胞菌在自然土壤生态系统中的作用的理解,并为更好地理解微生物在整个生态系统转化中的作用提供基础。