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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.
Abstract:
Mycoplasmal pneumonia of sheep (MPS), caused by Mesomycoplasma (Mycoplasma) ovipneumoniae, profoundly impacts ovine productivity and survival. Although gut-lung microbiota interactions are increasingly recognized in respiratory diseases, whether similar crosstalk occurs between the lung and rumen microbiota in MPS-affected sheep remains unknown. To investigate alterations in the lung and rumen microbiota of sheep with MPS, the crosstalk between these microbial communities, and their impacts on growth phenotypes. From a cohort of 414 naturally infected six-month-old male Hu sheep, we selected 10 individuals with severe pulmonary pathology and 10 healthy controls for detailed phenotypic and microbiome analyses. Assessment of 359 phenotypic traits revealed that MPS significantly impairs feed efficiency and growth rate (p < 0.05). Through 16S rRNA gene sequencing, we found that MPS significantly altered the pulmonary microbiota community structure (p < 0.01), with a noticeable impact on the rumen microbiota composition (p = 0.059). Succinivibrionaceae_UCG-001 was significantly depleted in both the rumen and lungs of diseased sheep (p < 0.05) and strongly associated with reduced average daily feed intake (p < 0.05). In addition, pulmonary Pasteurella and ruminal Succinivibrionaceae_UCG-002 were significantly enriched in MPS-affected sheep, showed a strong positive correlation (p < 0.05), and were both negatively associated with feed efficiency (p < 0.05). Notably, Pasteurella multocida subsp. gallicida may act as a keystone species influencing feed efficiency. These findings point to a previously unrecognized rumen-lung microbial axis that may modulate host productivity in sheep affected by MPS. This work provides new insights into the pathogenesis of MPS and offers potential targets for therapeutic intervention and management.
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.
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