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May 18, 2026Communications Biology0 citationsOpen Access

Decoding the human gut bacterial plasmids in colorectal cancer

SHShuwen HanZWZheng WuWYWu Yinhang

Key Points

  • This research aims to understand the role of gut bacterial plasmids in colorectal cancer and their interaction with host bacteria and metabolites.
  • Analyzed metagenomic data from 863 participants, including 312 with colorectal cancer.
  • Employed differential analysis, random forest modeling, and structural equation modeling to assess plasmid effects.
  • Characterized bacterial profiles and identified interactions among gut plasmids, bacteria, and metabolites.
  • Plasmids in high-risk and CRC groups showed a decreasing trend in overall abundance.
  • Identified six key bacterial hosts and 12 plasmid markers relevant to CRC risk prediction.
  • Trace elements and metabolites negatively impacted most plasmids, with Ni positively influencing specific plasmids.

Abstract

Gut plasmids show heightened sensitivity to gut microenvironmental changes compared to their bacterial hosts. To explore their significance in colorectal cancer (CRC), we analyzed metagenomic data from 863 participants (312 CRC, 387 high-risk, 164 low-risk). Plasmid and bacterial profiles were characterized, along with trace elements and metabolites. Differential analysis, functional gene assessment (ARG, MGE, MRG, VFGB), random forest modeling, and structural equation modeling (SEM) were applied. In terms of overall abundance, plasmids in both the high-risk and CRC groups exhibited a decreasing trend. Gut plasmids significantly influenced the functional genes (ARG, MGE, MRG, VFGB) of their bacterial hosts. Six key bacterial hosts (Enterobacterales, Bucrkholderiales, Hyphomicrobiales, Lactobacillales, Bacteroidales, Campylobacterales) and 12 plasmid markers were identified. The plasmid-based model effectively predicted CRC risk. SEM revealed that trace elements (e. g. , Ni), metabolites (e. g. , 5-Hydroxytryptophol), and host bacteria (e. g. , Campylobacterales, Enterobacterales) predominantly exerted negative effects on most plasmids, whereas Ni exhibited a positive influence on plasmids NZCP013564. 1, NZCP024312. 1, and NZCP48284. 1. We characterized the composition of gut plasmids and their bacterial hosts, explored the impacts of gut plasmids on bacterial functionality, and mapped multi-omics interaction networks linking plasmids, hosts, and metabolic features.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/6a0aac6d5ba8ef6d83b6fcfehttps://doi.org/10.1038/s42003-026-10278-w
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