Sep 2026· Gut Pathogens· Vol 18· 0 citations· 77 references
Medicine
TL;DR
These findings provide crucial insights into the ecological and population-level factors shaping the gut resistome, highlighting the roles of both pathogens and commensals in the maintenance and dissemination of antimicrobial resistance.
Abstract
The human microbiome serves as a reservoir of antibiotic resistance genes (ARGs), collectively known as the resistome, which has crucial implications for human health. However, the distribution of ARGs across diverse bacterial taxa and their variation across populations, disease states, and body sites remain less well understood. Here, we comprehensively profiled the human resistome using genomic and metagenomic data. Our analysis included 4,744 species-representative gut bacterial genomes and 452 oral bacterial genomes, along with gut metagenomic data from 10,230 individuals across 58 studies encompassing 5,388 healthy and 4,842 disease-associated samples, including underexplored non-Western cohorts. Our analysis revealed variation in the gut resistome across population groups and countries. The oral microbiome exhibited a distinct resistome profile with lower ARG prevalence compared to the gut. Across multiple datasets, ARG abundance was generally higher in inflammatory bowel disease samples compared to healthy samples. Pathogenic taxa such as Enterobacter, Citrobacter, Escherichia, and Klebsiella carried the highest number of ARGs, including clinically relevant ARGs, whereas abundant commensals like Bacteroides and Prevotella contributed to the baseline resistome. Notably, population-level differences in ARG composition appeared to be linked to microbial community structure. Shared ARGs between commensal and pathogenic bacteria provided clues to horizontal gene transfer. These findings provide crucial insights into the ecological and population-level factors shaping the gut resistome, highlighting the roles of both pathogens and commensals in the maintenance and dissemination of antimicrobial resistance.
Long-term residence in the gut enables microbes to interact with the host and influence intestinal health. However, many microbiome studies focus on taxonomic profiles or broad metabolic pathway annotations and provide limited insight into the conserved genes that support microbial residence. Here we show that coloniza...
Jin-Xin Meng, Wen-Di Li, Wei-Fu Tao et al.· Nature Communications· 0 citations
Introduction Inflammatory bowel disease (IBD) is associated with gut microbial dysbiosis, yet the ecological processes underlying community assembly remain unclear. Methods Here, we applied Sloan’s neutral community model to examine the relative contributions of stochastic and deterministic processes across multiple ec...
Wendy Li, Yali Yuan, Xue-Wen Li et al.· Frontiers in Microbiology· 0 citations
The gut microbiome is a complex ecosystem consisting of bacteria, archaea, fungi, viruses, and other microorganisms that interact continuously with the intestinal epithelium, immune system, and metabolic pathways of the host. Increasing evidence demonstrates that alterations in the composition and function of the gut m...
Ulykbek Daurenov, Dana Suyunbay, Alua Toqseiıt et al.· European Open Science Space· 0 citations
The human microbiome is a diverse and dynamic microbial community composed of trillions of microorganisms that inhabiting various body sites, such as the gut, skin, oral cavity, respiratory tract, and urogenital system. These microbial communities sustain the host’s physiological functions and health through interactio...
Shahar Bano, Javeria Pervaiz, Muaaz Bin Waqar et al.· Microbes & Immunity· 0 citations
Application to a human sample from a patient with type 2 Diabetes Mellitus recovered a dysbiotic signature consistent with the literature, including reduced Firmicutes abundance, elevated Bacteroidetes and Proteobacteria, and a predominance of clinical associations within metabolic and gastrointestinal categories.
Rodrigo Lima Andrade, Tayná da Silva Fiúza, J. Kroll et al.· bioRxiv· 0 citations
The human microbiome encompasses trillions of microorganisms, including bacteria, archaea, fungi, viruses, and protozoa, colonizing virtually every body surface. These communities contribute to digestion, immune regulation, metabolic homeostasis, and protection against pathogens. Disruption of microbial balance, termed...
D. Saini· Microbiologia Medica· 0 citations
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