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Chang Wen

Researcher at Fujian Agriculture and Forestry University

Publications -  5
Citations -  82

Chang Wen is an academic researcher from Fujian Agriculture and Forestry University. The author has contributed to research in topics: Biology & Medicine. The author has an hindex of 1, co-authored 3 publications receiving 10 citations.

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Herbicide Selection Promotes Antibiotic Resistance in Soil Microbiomes.

TL;DR: In this article, the authors show that application of three widely used herbicides-glyphosate, glufosinate, and dicamba-increases the prevalence of antibiotic resistance genes (ARGs) and mobile genetic elements (MGEs) in soil microbiomes without clear changes in the abundance, diversity and composition of bacterial communities.
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Herbicide promotes the conjugative transfer of multi-resistance genes by facilitating cellular contact and plasmid transfer

TL;DR: A mechanistic understanding of the risk of bacterial resistance spread promoted by herbicides is provided, which elucidates a new perspective on nonantibiotic agrochemical acceleration of the HGT of ARGs.
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Airborne and indigenous microbiomes co-drive the rebound of antibiotic resistome during compost storage

TL;DR: In this article, the authors used metagenomics, quantitative PCR and direct culturing to investigate the fate and abundance of residual ARGs during the storage of organic waste in composting.
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Distinctive community assembly enhances the adaptation to extreme environments during hyperthermophilic composting.

TL;DR: In this paper , the authors investigated the assembly process of the hTC microbial community and explored the underlying drivers influencing community assembly in this work by employing conventional thermophilic composting (cTC) as a comparison group.
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Isolation and Characterization of the Lytic Pseudoxanthomonas kaohsiungensi Phage PW916

TL;DR: This is the first study to identify a novel phage infecting the multidrug-resistant P. kaohsiungensi and the findings provide insight into the potential application of PW916 in future phage therapies.