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Successive monocropping of causes continuous cropping obstacles, impairing growth, yield, and quality. To investigate the soil environmental and microbial changes caused by these obstacles, we collected both continuous cropping (C-crop) and non-continuous cropping (NC-crop) soil for analysis. We employed high-throughput sequencing, Biolog-ECO microplate, and metabolomics technology to evaluate microbial diversity, community structure, and carbon source utilization efficiency. Compared with NC-crop, C-crop decreased the yield and polysaccharide content of by 40.47 and 29.4%, respectively. Continuous cropping significantly altered soil physicochemical properties and metabolomes, driving distinct shifts in microbial community structure and impairing carbon utilization efficiency. Microbial carbon use efficiency was positively correlated with key soil bacteria and fungi. However, their abundance decreased significantly under continuous cropping, ultimately disrupting soil carbon cycling. Moreover, key bacterial (e.g., , , , ) and fungal genera (e.g., , , ) showed strong correlations with critical soil physicochemical properties, microbial carbohydrate metabolism, and rhizosphere metabolite profiles. The reduced abundance of these microbes disrupted soil nutrient balance and microbial activity, potentially contributing to continuous cropping obstacles. This study contributes to the understanding of the mechanisms underlying continuous cropping obstacles in and lays the foundation for developing strategies to alleviate these obstacles.
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http://dx.doi.org/10.3389/fmicb.2025.1628234 | DOI Listing |
Sorghum is one of the critical food security crops, particularly in moisture-stressed areas of Ethiopia. However, in the absence of a well-organized formal seed system, public research institutions have continued to promote and disseminate improved sorghum varieties to encourage adoption. On the other hand, the lack of evidence on smallholder farmers' demand for improved varieties has discouraged the seed industry from investing in marginalized crops, like sorghum, in contrast to more commercialized crops such as wheat and maize.
View Article and Find Full Text PDFFront Plant Sci
August 2025
Department of Horticulture, Michigan State University, East Lansing, MI, United States.
Plant growth regulators (PGRs) include natural and synthetic plant phytohormones and other substances with the capacity to shape one or more aspects of plant growth and development at small concentrations. PGRs are commonly utilized in tree fruit and table grape production to reduce fruit set (thinning) and increase fruit size, coloration, and quality. However, use of PGRs in the production of berry crops, such as blueberry, is less common despite the abundance of production issues and the breadth of PGRs generally registered for fruit crops.
View Article and Find Full Text PDFFront Microbiol
August 2025
College of Science, Beihua University, Jilin, China.
Introduction: Ginseng ( C. A. Meyer) is a widely cultivated medicinal plant valued for its bioactive ginsenosides, which are influenced by soil conditions and microbial interactions.
View Article and Find Full Text PDFJ Biosci
September 2025
Department of Molecular Biology and Biotechnology, Tezpur University, Tezpur 784028, India.
Plants, being sessile organisms, are continually exposed to diverse combinations of biotic and abiotic stresses in their natural habitats. Combined stresses are considered significant threats to plants, particularly in the context of today's climate change. Despite the vast amount of data generated by OMICS experiments, information remains widely dispersed and inaccessible within the literature.
View Article and Find Full Text PDFPest Manag Sci
September 2025
College of Life Science and Agroforestry, Qiqihar University, Qiqihar, China.
Background: Watermelon production is threatened by Fusarium oxysporum f. sp. niveum (Fon) in continuous cropping systems.
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