Fungal extracellular vesicles reshape Lactobacillus rhamnosus vesicles to enhance lysosomal homeostasis and resolve intestinal inflammation

Extracellular vesicles (EVs) are emerging mediators of intercellular and interkingdom communication. While bacterial EVs directly modulate host health, whether exogenous vesicles can reprogram gut microbial vesiculation and bioactivity remains unclear. Using a defined in vitro conditioning system, ScEV exposure altered EV production by Lactobacillus rhamnosus, generating ScEV-conditioned L. rhamnosus vesicles (ScEV-LrEVs). Comparative proteomics and lipidomics revealed extensive remodeling of vesicle cargo, including ~60-fold enrichment of hydroxylated ceramide Cer(t18:0/24:0(2OH)) in ScEV-LrEVs. Functionally, ScEV-LrEVs showed enhanced anti-inflammatory activity in LPS-stimulated macrophages, accompanied by improved lysosomal function and coordinated changes in mTOR-TFEB-related lysosome-autophagy markers. In a DSS-induced colitis model, ScEV-LrEVs alleviated mucosal injury, reduced immune-cell infiltration, and reinforced epithelial barrier integrity, accompanied by restoration of lysosomal function and coordinated changes in mTOR-TFEB-related markers. Ceramide-enriched EVs partially recapitulated the anti-inflammatory and lysosome-restorative activity of ScEV-LrEVs. Together, these findings uncover a cross-kingdom vesicle communication axis whereby fungal EV exposure remodels the molecular and functional properties of gut microbial vesicles, accompanied by enhanced lysosomal homeostasis and protection against intestinal inflammation.

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Publication Details

Journal
Gut Microbes
Published
2026-09-19
DOI
https://doi.org/10.1080/19490976.2026.2736915
Primary Topic
Extracellular vesicles in disease
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article
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article

Fungal extracellular vesicles reshape Lactobacillus rhamnosus vesicles to enhance lysosomal homeostasis and resolve intestinal inflammation

Xiangqian Zhang, Zhengmei Ji, Xiaolong He, Hang Xiao et al.
Gut Microbes
Extracellular vesicles in disease
article

Fungal extracellular vesicles reshape Lactobacillus rhamnosus vesicles to enhance lysosomal homeostasis and resolve intestinal inflammation

Xiangqian Zhang, Zhengmei Ji, Xiaolong He, Hang Xiao, Guoliang Chen, Yanhui Han, Yurong Guo, Bin Chen
article en

Abstract

Extracellular vesicles (EVs) are emerging mediators of intercellular and interkingdom communication. While bacterial EVs directly modulate host health, whether exogenous vesicles can reprogram gut microbial vesiculation and bioactivity remains unclear. Using a defined in vitro conditioning system, ScEV exposure altered EV production by Lactobacillus rhamnosus, generating ScEV-conditioned L. rhamnosus vesicles (ScEV-LrEVs). Comparative proteomics and lipidomics revealed extensive remodeling of vesicle cargo, including ~60-fold enrichment of hydroxylated ceramide Cer(t18:0/24:0(2OH)) in ScEV-LrEVs. Functionally, ScEV-LrEVs showed enhanced anti-inflammatory activity in LPS-stimulated macrophages, accompanied by improved lysosomal function and coordinated changes in mTOR-TFEB-related lysosome-autophagy markers. In a DSS-induced colitis model, ScEV-LrEVs alleviated mucosal injury, reduced immune-cell infiltration, and reinforced epithelial barrier integrity, accompanied by restoration of lysosomal function and coordinated changes in mTOR-TFEB-related markers. Ceramide-enriched EVs partially recapitulated the anti-inflammatory and lysosome-restorative activity of ScEV-LrEVs. Together, these findings uncover a cross-kingdom vesicle communication axis whereby fungal EV exposure remodels the molecular and functional properties of gut microbial vesicles, accompanied by enhanced lysosomal homeostasis and protection against intestinal inflammation.

Gut MicrobesVol. 18(1)
University of Massachusetts Boston (US), Yan'an University (CN), Shaanxi Normal University (CN)
Openalex Percentile: Top 18%
Extracellular vesicles in disease
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Fungal extracellular vesicles reshape Lactobacillus rhamnosus vesicles to enhance lysosomal homeostasis and resolve intestinal inflammation — Xiangqian Zhang, Zhengmei Ji, et al. · Gut Microbes (2026) | TGRS Research Map | TGRS