Integrated metagenomic and metabolomic insights into microbial metabolic reprogramming in the rhizosphere of the invasive plant Praxelis clematidea under low-temperature stress
This integrated multi-omics study reveals that P. clematidea is associated with an altered rhizosphere microbiome, differential functional gene abundance, and reorganized metabolic networks under low-temperature conditions.
Abstract
A primary factor preventing the spread of the invasive plant Praxelis clematidea to higher latitudes and altitudes is the low-temperature stress induced by global climate change. The present study investigated the impact of low-temperature stress on the rhizosphere soil micro-ecosystem of P. clematidea, with the aim of examining its adaptive micro-ecological mechanisms via a comprehensive multi-omics approach. The rhizosphere soils of plants were compared under low-temperature (LT, 5 °C) or normal-temperature (HT, 25 °C) treatments. Using soil physicochemical analysis, enzyme activity assay, metagenomics, and non-targeted metabolomics, we observed that LT stress did not significantly alter microbial alpha diversity but strongly shifted the community structure. This change enriched cold-tolerant bacterial taxa, including Nocardiopsis, Sphingobium and Azoarcus. The LT stress was associated with altered carbon and nitrogen cycling, as indicated by increased soil urease activity but decreased alkaline phosphatase and catalase activities. The nitrate-N and ammonium-N levels increased, but total nitrogen, total organic carbon, and organic matter were reduced. Additionally, metagenomic study revealed overexpression of major microbial carbon metabolism genes (e.g., TCA cycle and glycolysis) and downregulation of nitrogen assimilation genes (e.g., glnA and NasA). Furthermore, metabolomics indicated a rise in carbohydrates and vitamins, along with a notable accumulation of stress-resistant secondary metabolites such as phenolic acids, flavonoids, and terpenes in the rhizosphere soils under LT stress. Correlation analysis indicated strong positive associations between the enriched cold-tolerant genera and these stress-resistant metabolites (e.g., costunolide and choline sulfate). Functional enrichment analysis suggested a metabolic reprogramming signature coupled with low-temperature treatment. Finally, this integrated multi-omics study reveals that P. clematidea is associated with an altered rhizosphere microbiome, differential functional gene abundance, and reorganized metabolic networks under low-temperature conditions. These findings offer a vital micro-ecological elucidation for P. clematidea effective colonization and propagation in novel, colder habitats.
Soil microbial community dynamics are closely linked to ecosystem functions and responses to environmental stress. This study aimed to investigate the impacts of incubation time and different treatment conditions (CK, CK60, and PLA60) on soil bacterial community structure, diversity, and potential metabolic functions....
Haoran Liu, Zi-Xuan Zhang, Yani Wang et al.· E3S Web of Conferences· 0 citations
Abstract The soil microbiome drives soil organic carbon (SOC) transformation, shaped and impacted by plant growth stage and soil management such as tillage. The soil microbial carbon pump conceptually links the degradation of plant- and microbe-derived compounds and the neosynthesis of microbial biomass, as a driver of...
Julian Ruggaber, Sonja Wende, Si-Zhong Yang et al.· FEMS Microbiology Ecology· 0 citations
Soil microorganisms and metabolites are the central elements of rhizosphere microenvironment, with substantial effects on nutrient acquisition, stress resilience, and yield performance in sorghum.
In this study, root antioxidant enzyme activity, malondialdehyde (MDA) content, and soil properties from Jinnuo...
Suxian Yan, Huiming Li, Yu-Zhong Cheng et al.· Frontiers in Soil Science· 0 citations
L-glufosinate-ammonium (L-GLA), a widely used herbicide, exerts detrimental non-target effects on crops, soil microorganisms, and ecosystems. However, its impacts on soil microbial communities and metabolic functions remain poorly understood. In this study, we applied L-GLA at two concentrations—600 g a.i. hm−2 (low, L...
Yuan-Feng Dai, Han Li, Han-Cheng Wang et al.· Frontiers in Microbiology· 0 citations
Soil salinization is a major constraint on wheat production, as seedling-stage stress strongly constrains early growth and potential yield. However, the mechanisms by which the rhizosphere microbiome mediates varietal differences in salt tolerance remain poorly understood. Here, we compared a salt-tolerant wheat cultiv...
Yan-Wei Kan, Yu-Hao Fu, Wenliang Yang et al.· Journal of Environmental Man...· 0 citations
Although SIRJ8 exhibited multiple plant-beneficial traits, its virulence-associated genomic repertoire precludes its consideration as an agricultural bioinoculant at present and underscores the necessity of comprehensive biosafety evaluation before any practical application.
S. Mukharjee, M. Hasan, B. Sikdar· Scientific Reports· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.