Grassland-associated bacterial and eukaryotic DNA signals in plateau pika feces across sampled natural and degraded grasslands

Grassland-associated habitat differences may be reflected in fecal microbial and eukaryotic DNA signatures of wild small mammals, but such host-associated responses remain poorly characterized in alpine grasslands. The plateau pika (Ochotona curzoniae), a keystone small mammal on the Qinghai-Tibetan Plateau, links vegetation, soil, burrow systems, predators and parasite-associated interfaces. We evaluated whether fecal bacterial and broad eukaryotic DNA signatures differed between sampled natural and degraded grasslands, with particular attention to nematode-like 18 S signals. We analyzed fecal 16 S rRNA V3-V4 and 18 S rRNA V4 profiles from 30 matched plateau pika samples collected at one sampled natural-grassland site and one sampled degraded-grassland site in Seda County, China. After rarefaction to 26,106 reads per sample for 16 S and 21,298 reads per sample for 18 S, no alpha-diversity metric differed significantly between grassland states. In contrast, bacterial and overall eukaryotic composition differed significantly, although grassland state explained only a small fraction of multivariate variation. Broad 18 S profiles were fungal-dominated. Nematode-like, broad parasite-associated and strict parasite-associated 18 S signals were higher in the sampled degraded grassland. PR2/SILVA searches supported broad Nematoda assignments for key amplicon sequence variants but did not support Lamotheoxyuris or Eimeria as main-text lineage-level conclusions. Cross-domain analyses did not support strong bacterial-eukaryotic coupling. Fecal bacterial and eukaryotic DNA signatures captured grassland-associated compositional reorganization in plateau pika, while within-sample diversity remained similar between the two sampled grassland states. Elevated Nematoda/nematode-like 18 S DNA signals in the sampled degraded grassland provide a non-invasive molecular signal that warrants targeted parasitological validation. Because each grassland state was represented by one site and 18 S rarefaction curves remained incompletely saturated, the findings are restricted to the sampled sites and should not be interpreted as landscape-wide effects, infection prevalence or parasite burden.

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Journal
BMC Microbiology
Published
2026-09-15
DOI
https://doi.org/10.1186/s12866-026-05655-8
Primary Topic
Parasite Biology and Host Interactions
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article
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article

Grassland-associated bacterial and eukaryotic DNA signals in plateau pika feces across sampled natural and degraded grasslands

Junsong Zhao, Yutong Liu, Xin He, Guiwen He et al.
BMC Microbiology
Parasite Biology and Host Interactions
article

Grassland-associated bacterial and eukaryotic DNA signals in plateau pika feces across sampled natural and degraded grasslands

Junsong Zhao, Yutong Liu, Xin He, Guiwen He, Gang Liu, Siwei Yang
article en

Abstract

Grassland-associated habitat differences may be reflected in fecal microbial and eukaryotic DNA signatures of wild small mammals, but such host-associated responses remain poorly characterized in alpine grasslands. The plateau pika (Ochotona curzoniae), a keystone small mammal on the Qinghai-Tibetan Plateau, links vegetation, soil, burrow systems, predators and parasite-associated interfaces. We evaluated whether fecal bacterial and broad eukaryotic DNA signatures differed between sampled natural and degraded grasslands, with particular attention to nematode-like 18 S signals. We analyzed fecal 16 S rRNA V3-V4 and 18 S rRNA V4 profiles from 30 matched plateau pika samples collected at one sampled natural-grassland site and one sampled degraded-grassland site in Seda County, China. After rarefaction to 26,106 reads per sample for 16 S and 21,298 reads per sample for 18 S, no alpha-diversity metric differed significantly between grassland states. In contrast, bacterial and overall eukaryotic composition differed significantly, although grassland state explained only a small fraction of multivariate variation. Broad 18 S profiles were fungal-dominated. Nematode-like, broad parasite-associated and strict parasite-associated 18 S signals were higher in the sampled degraded grassland. PR2/SILVA searches supported broad Nematoda assignments for key amplicon sequence variants but did not support Lamotheoxyuris or Eimeria as main-text lineage-level conclusions. Cross-domain analyses did not support strong bacterial-eukaryotic coupling. Fecal bacterial and eukaryotic DNA signatures captured grassland-associated compositional reorganization in plateau pika, while within-sample diversity remained similar between the two sampled grassland states. Elevated Nematoda/nematode-like 18 S DNA signals in the sampled degraded grassland provide a non-invasive molecular signal that warrants targeted parasitological validation. Because each grassland state was represented by one site and 18 S rarefaction curves remained incompletely saturated, the findings are restricted to the sampled sites and should not be interpreted as landscape-wide effects, infection prevalence or parasite burden.

BMC Microbiology
Zhaotong University (CN), State Forestry and Grassland Administration (CN), Sichuan Academy Of Social Sciences (CN)
Life in Land
Openalex Percentile: Top 11%
Parasite Biology and Host Interactions
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