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February 23, 2026Gut Microbes2 citationsOpen Access

Extracellular vesicles and their RNA cargo facilitate bidirectional cross-kingdom communication between human and bacterial cells

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LGLaura GrögerSRShusruto RishikNLNicole Ludwig

Key Points

  • The research examines how extracellular vesicles facilitate communication between human colon cells and gut bacteria.
  • Investigated the effects of bacterial EVs on human Caco-2 cells.
  • Analyzed transcriptomic changes induced by different bacterial species.
  • Performed transfection with BEV-derived RNA to assess its independent effects.
  • Examined interactions between Caco-2-derived EVs and bacteria.
  • Identified nearly 6,000 differentially expressed genes in Caco-2 cells upon exposure to BEVs.
  • Transfection with BEV RNA triggered similar transcriptomic changes as observed with BEV treatment.
  • Observed a significant increase in miR-192-5p levels in EVs from conditioned medium.
  • Demonstrated that miR-192-5p packaging affects its association with bacteria.

Abstract

While extracellular vesicles (EVs) are established mediators of intra-species signaling, their contribution to cross-kingdom communication remains incompletely understood. Here, we investigate the EV-mediated interactions between human colon epithelial cells and both Gram-positive and Gram-negative gut bacteria. We show that bacterial EVs (BEVs) derived from Lacticaseibacillus casei, Enterococcus faecalis, and Proteus mirabilis induce distinct transcriptomic changes in Caco-2 cells depending on the bacterial species, with up to ~6,000 differentially expressed genes, including CCL20, CXCL8, or CXCL10. Transfection of BEV-derived RNA independently induces a subset of similar effects, indicating that the EV-mediated communication is partially driven by the RNA cargo. Conversely, we demonstrate that bacteria interact with Caco-2-derived EVs and miR-192-5p, which is highly abundant (~36.4-fold higher) in EVs isolated from conditioned medium compared with EVs from unconditioned medium, with modest effects on bacterial growth. Furthermore, we show that lipid-based packaging of miR-192-5p modulates its association with the bacteria. Our findings support a conceptual model in which EVs and their RNA cargo contribute to species-dependent host-microbe interactions. This study introduces a framework for understanding EVs as cross-kingdom regulators and underscores the importance of tailored, context-specific analyses for understanding the scope of EV-mediated interactions in microbiome-host homeostasis and disease.

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Cite This Study

Gröger et al. (2026) studied this question.

synapsesocial.com/papers/699bee1c1c6c6bad5397fd34https://doi.org/10.1080/19490976.2026.2630482
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