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Huagaimu (Manglietiastrum sinicum) trees are critically endangered species and classified as a plant species with extremely small populations in China. Rhizospheres and bulk soils prokaryotic communities play an important role to protect and promote plants health and growth. However, the compositions and structures of prokaryotic communities in wild and reintroduced M. sinicum rhizospheres and bulk soils are still poorly understood. In the present study, prokaryotic communities in wild and reintroduced M. sinicum rhizospheres and bulk soils were compared using high-throughput sequencing. Thirty-two phyla, 76 classes, 193 orders, 296 families, and 470 genera of prokaryotes were obtained. Proteobacteria and Acidobacteria were the two most abundant phyla in all soil samples. The compositions and structures of prokaryotic communities were overall similar, and the abundance of some taxa varied significantly among soil samples. Soil prokaryotic communities were significantly affected by soil pH, total nitrogen, total phosphorus, and total potassium. Eleven of predicted functions were significantly different among the four soil groups. This study provides for the first insights into the compositions, structures, and potential functions of prokaryotic communities associated with wild and reintroduced M. sinicum rhizospheres and bulk soils, and providing a foundation for future research to help protect this endangered species.
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http://dx.doi.org/10.1007/s00284-021-02653-z | DOI Listing |
Mol Syst Biol
September 2025
TBI, Université de Toulouse, CNRS, INRAE, INSA, Toulouse, France.
Overflow metabolism refers to the widespread phenomenon of cells excreting metabolic by-products into their environment. Although overflow is observed in virtually all living organisms, it has been studied independently and given different names in different species. This review highlights emerging evidence that overflow metabolism is governed by common principles in prokaryotic and eukaryotic organisms.
View Article and Find Full Text PDFMar Life Sci Technol
August 2025
State Key Laboratory of Marine Environmental Science, Fujian Key Laboratory of Marine Carbon Sequestration, College of Ocean and Earth Sciences, Xiamen University, Xiamen, 361005 China.
Unlabelled: Marine heterotrophic prokaryotes initially release extracellular enzymes to cleave large organic molecules and then take up ambient substrates via transporters. Given the direct influence of extracellular enzymes on nutrient availability, understanding their diversity and dynamics is crucial in comprehending microbial interactions and organic matter cycling in aquatic ecosystems. In this study, metagenomics was employed to investigate the functional diversity and dynamics of extracellular enzymes and transporters in coastal waters over a 22-day period.
View Article and Find Full Text PDFEnviron Microbiol
September 2025
Department Biodiversity, University of Duisburg-Essen, Essen, Germany.
Microbial communities play a crucial role in the functioning of freshwater ecosystems but are continuously threatened by climate change and anthropogenic activities. Elevated temperatures and salinisation are particularly challenging for freshwater habitats, but little is known about how microbial communities respond to the simultaneous exposure to these stressors. Here, we use mesocosm experiments and amplicon sequencing data to investigate the responses of pelagic and benthic microbial communities to temperature and salinity increases, both individually and in combination.
View Article and Find Full Text PDFFEMS Microbiol Ecol
September 2025
Institute of Microbiology, Leibniz University Hannover, 30419 Hannover, Germany.
Unmanaged plastic waste in Sub-Saharan Africa pollutes large areas and degrades into microplastics. Surfaces of microplastic are colonized by bacteria and fungi, resulting in the plastisphere. Plastispheres from high population hotspots on the African continent enrich pathogenic fungi, posing a potential threat to human health.
View Article and Find Full Text PDFWater Res
August 2025
MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, Dalian 116024, PR China.
Microalgal-bacterial biofilm could realize synergistic pollutants removal, CO sequestration, and resource transformation from wastewater. Pre-designed biofilm with clear microbial composition would benefit resource transformation, yet little is known about its nutrients removal performance under axenic conditions, not to mention the comparison with non-axenic conditions over extended operation. To fill in this knowledge gap, this study first investigated the growth characteristics and nutrients removal performances of a pre-designed microalgae dominant biofilm.
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