Stage-specific remodeling of the pulmonary microenvironment during Paragonimus proliferus infection in a rat model

Paragonimiasis, a food-borne zoonosis caused by Paragonimus spp., can cause severe pulmonary inflammation and fibrosis. However, relationships among the host, parasite and lung microbiome at defined infection stages remain poorly understood. We compared independent groups of rats sampled at 14, 28 and 42 days post-infection (dpi), together with a separate group sampled after triclabendazole (TCBZ) treatment. Histopathological and molecular analyses were combined with multi-region (5R) 16S rRNA gene sequencing and fluorescence in situ hybridization (FISH). Groups sampled at later post-infection time points showed greater pulmonary inflammation and collagen deposition, with the highest values in Pp-42d; both outcomes were lower in Pp-TCBZ than in Pp-42d. Th1-, eosinophil-, Th2- and Treg- associated markers differed among experimental groups. TLR4/NF-κB -related protein expression and pulmonary microbial profiles also differed among groups including enrichment of taxa such as Lactobacillus in infected animals. FISH detected bacterial signals within inflammatory lesions and Lactobacillus -associated signals spatially associated with parasite eggs. These repeated cross-sectional findings identify stage-associated differences in pulmonary pathology, immune markers and microbiota during P. proliferus infection, together with lower pathological measures in the Pp-TCBZ group than in the untreated Pp-42d group. The egg-associated bacterial signals warrant further investigation but do not establish a functional host-parasite-microbiome mechanism.

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Journal
PLoS neglected tropical diseases
Published
2026-09-25
DOI
https://doi.org/10.1371/journal.pntd.0014760
Primary Topic
Parasites and Host Interactions
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article
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article

Stage-specific remodeling of the pulmonary microenvironment during Paragonimus proliferus infection in a rat model

Wei‐Xun Chunyu, Min Yin, Xiaoyan Zhu, Cuiying Li et al.
PLoS neglected tropical diseases
Parasites and Host Interactions
article

Stage-specific remodeling of the pulmonary microenvironment during Paragonimus proliferus infection in a rat model

Wei‐Xun Chunyu, Min Yin, Xiaoyan Zhu, Cuiying Li, Lei Zhang, Xing Yan, Le Sun, Danhong Cheng, Shuwen Yang, Yu Wang
article en

Abstract

Paragonimiasis, a food-borne zoonosis caused by Paragonimus spp., can cause severe pulmonary inflammation and fibrosis. However, relationships among the host, parasite and lung microbiome at defined infection stages remain poorly understood. We compared independent groups of rats sampled at 14, 28 and 42 days post-infection (dpi), together with a separate group sampled after triclabendazole (TCBZ) treatment. Histopathological and molecular analyses were combined with multi-region (5R) 16S rRNA gene sequencing and fluorescence in situ hybridization (FISH). Groups sampled at later post-infection time points showed greater pulmonary inflammation and collagen deposition, with the highest values in Pp-42d; both outcomes were lower in Pp-TCBZ than in Pp-42d. Th1-, eosinophil-, Th2- and Treg- associated markers differed among experimental groups. TLR4/NF-κB -related protein expression and pulmonary microbial profiles also differed among groups including enrichment of taxa such as Lactobacillus in infected animals. FISH detected bacterial signals within inflammatory lesions and Lactobacillus -associated signals spatially associated with parasite eggs. These repeated cross-sectional findings identify stage-associated differences in pulmonary pathology, immune markers and microbiota during P. proliferus infection, together with lower pathological measures in the Pp-TCBZ group than in the untreated Pp-42d group. The egg-associated bacterial signals warrant further investigation but do not establish a functional host-parasite-microbiome mechanism.

PLoS neglected tropical diseasesVol. 20(9)
Yunnan University (CN), Kunming Medical University (CN), First Affiliated Hospital of Kunming Medical University (CN)
Openalex Percentile: Top 10%
Parasites and Host Interactions
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