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Nan, F.-L.

Publications and source records attributed to Nan, F.-L..

2 recordsLinked to original sources

Integrated metagenome-resolved profiling of the resistome, virulome, and mobilome in the gut microbiota of wild birds

Wild birds, with their extensive geographic distributions and high mobility, are increasingly recognized as important players in the dissemination of antimicrobial resistance. Their gut microbiota, shaped by exposure to diverse environments, may act as both reservoirs and vectors of antibiotic resistance genes (ARGs), virulence factor genes (VFGs), and mobile genetic elements (MGEs). In this study, we reconstructed 2,516 high-quality metagenome-assembled genomes (MAGs) from 718 gut metagenomes of wild birds to comprehensively profile their resistome and virulome. We identified 5,596 ARG-encoding proteins across 389 distinct ARG types, with multidrug resistance emerging as the most dominant category. Escherichia coli was the principal carrier of ARGs, and genes conferring resistance to elfamycin antibiotics via target alteration were notably widespread--indicating persistent antibiotic selection pressures in avian habitats. Co-occurrence analyses revealed extensive genetic linkage between ARGs, VFGs, and MGEs. Critically, we detected 25 ARG-MGE co-localization events within 5-kilobase genomic regions, highlighting a strong potential for horizontal gene transfer and accelerated resistance dissemination within microbial communities. Of particular concern was the detection of the tetX1 gene--conferring resistance to tigecycline, a last-resort antibiotic--in the gut microbiota of Chroicocephalus ridibundus and Cygnus cygnus. This finding strongly implicates anthropogenic pollution in the spread of clinically relevant ARGs into wildlife and emphasizes the risk of environmental transmission to other hosts, including humans. These results underscore the critical ecological role of wild birds in the global antimicrobial resistance network. As both reservoirs and potential vectors of ARGs, they represent a significant but under-monitored interface between environmental and clinical resistance pathways. Enhanced surveillance and mitigation strategies targeting wildlife are urgently needed to curb the environmental propagation of antimicrobial resistance.

microbiology↗

Expanding the chicken gut virome: Uncovering viral diversity, host interactions, and regional variations across the intestinal tract

Chicken gastrointestinal virome comprises a complex and diverse viral community with significant implications for host health and microbiome function. We analyzed 3,312 publicly available chicken gut metagenomic datasets to establish the chicken gastrointestinal virome collection (CGVD), which includes 39,380 non-redundant viral operational taxonomic units (vOTUs); notably, 84.90% (33,433/39,380) represent novel sequences absent from current databases. Over half of the CGVD vOTUs were classified as bacteriophages, predominantly from the order Caudovirales. The predicted hosts were mainly prokaryotes, particularly Bacillota and Bacteroidota, revealing a multifaceted landscape of virus-host interactions. Many vOTUs infected multiple bacterial phyla, indicating high adaptability and broad ecological impact. In addition, lifestyle prediction showed that 28.28% (11,137 /39,380) of the vOTUs in CGVD were identified as lytic phages. Functional annotation demonstrated that viral genes contribute to key metabolic processes, including nucleotide and amino acid metabolism, thereby facilitating viral replication and host adaptation. The detection of auxiliary metabolic genes and carbohydrate-active enzymes underscores the role of viruses in modulating the gut microbiome. Although antibiotic resistance genes and mobile genetic elements were present, their contribution to horizontal gene transfer appears limited. Additionally, marked regional differences in virome composition were observed between the small and large intestines, particularly in the abundance of families such as Siphoviridae and Myoviridae. CGVD not only highlights the key role of viruses in shaping the chicken gut microbiome and influencing microbial dynamics and metabolic pathways, but also provides new resources and insights for future research.

microbiology↗