Multidimensional Phenotypic and Microbiome Studies Uncover an Association Between Reduced Feed Efficiency in Sheep

Lianjun Feng1, Yukun Zhang1, Xiaoxue Zhang2

  • 1College of Pastoral Agriculture Science and Technology, Lanzhou University, Lanzhou 730020, China.

Veterinary Sciences
|August 28, 2025
PubMed

Insights

Mycoplasmal pneumonia of sheep (MPS) impairs growth and feed efficiency by altering lung and rumen microbial communities. A novel rumen-lung microbial axis is identified, impacting sheep productivity.

Area of Science:

  • Veterinary Microbiology
  • Animal Science
  • Microbiome Research

Background:

  • Mycoplasmal pneumonia of sheep (MPS), caused by *Mesomycoplasma ovipneumoniae*, significantly reduces ovine productivity and survival.
  • While gut-lung microbiota interactions are known in respiratory diseases, the lung-rumen microbial crosstalk in MPS-affected sheep is unexplored.

Purpose of the Study:

  • To investigate lung and rumen microbiota alterations in MPS-affected sheep.
  • To explore the crosstalk between these microbial communities.
  • To determine the impact on host growth phenotypes.

Main Methods:

  • Phenotypic assessment of 359 traits in 414 naturally infected Hu sheep.
  • 16S rRNA gene sequencing for lung and rumen microbiota analysis in 10 severe MPS cases and 10 healthy controls.
  • Correlation analysis between microbial composition and phenotypic traits.

Main Results:

  • MPS significantly impaired feed efficiency and growth rate (p < 0.05).
  • Pulmonary and rumen microbiota structures were significantly altered in MPS-affected sheep (p < 0.01 and p = 0.059, respectively).
  • *Succinivibrionaceae_UCG-001* depletion in both sites correlated with reduced feed intake; pulmonary *Pasteurella* and ruminal *Succinivibrionaceae_UCG-002* enrichment negatively impacted feed efficiency.

Conclusions:

  • A novel rumen-lung microbial axis influences host productivity in MPS-affected sheep.
  • Specific microbial alterations, including *Pasteurella multocida* subsp. *gallicida*, are linked to reduced feed efficiency.
  • Findings offer potential therapeutic targets for MPS management.