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Commensal Microbiota Regulation of Metabolic Networks During Olfactory Dysfunction in Mice
Haiyang Wang1,2, Lanxiang Liu1,3, Xuechen Rao1,2
1NHC Key Laboratory of Diagnosis and Treatment on Brain Functional Diseases, The First Affiliated Hospital of Chongqing Medical University, Chongqing 400016, People's Republic of China.
Introduction:
Recently, an increasing number of studies have focused on commensal microbiota. These microorganisms have been suggested to impact human health and disease. However, only a small amount of data exists to support the assessment of the influences that commensal microbiota exert on olfactory function.
Methods:
We used a buried food pellet test (BFPT) to investigate and compare olfactory functions in adult, male, germ-free (GF) and specific-pathogen-free (SPF) mice, then examined and compared the metabolomic profiles for olfactory bulbs (OBs) isolated from GF and SPF mice to uncover the mechanisms associated with olfactory dysfunction.
Results:
We found that the absence of commensal microbiota was able to influence olfactory function and the metabolic signatures of OBs, with 38 metabolites presenting significant differences between the two groups. These metabolites were primarily associated with disturbances in glycolysis, the tricarboxylic acid (TCA) cycle, amino acid metabolism, and purine catabolism. Finally, the commensal microbiota regulation of metabolic networks during olfactory dysfunction was identified, based on an integrated analysis of metabolite, protein, and mRNA levels.
Conclusion:
This study demonstrated that the absence of commensal microbiota may impair olfactory function and disrupt metabolic networks. These findings provide a new entry-point for understanding olfactory-associated disorders and their potential underlying mechanisms.
Insights
The absence of gut microbes impairs the sense of smell and alters olfactory bulb metabolism. Commensal microbiota play a crucial role in maintaining olfactory function and metabolic homeostasis.
Area of Science:
- Microbiology
- Neuroscience
- Metabolomics
Background:
- Commensal microbiota significantly influence host health and disease.
- Limited data exists on the impact of commensal microbiota on olfactory function.
Purpose of the Study:
- To investigate the influence of commensal microbiota on olfactory function.
- To explore the underlying metabolic mechanisms in the olfactory bulb.
Main Methods:
- Utilized the buried food pellet test (BFPT) to assess olfactory function in germ-free (GF) and specific-pathogen-free (SPF) mice.
- Analyzed metabolomic profiles of olfactory bulbs (OBs) from GF and SPF mice.
Main Results:
- Absence of microbiota altered olfactory function and OB metabolic signatures.
- Identified 38 differentially abundant metabolites linked to disrupted glycolysis, TCA cycle, amino acid, and purine metabolism.
- Revealed microbiota's role in regulating metabolic networks affecting olfactory dysfunction through integrated multi-omics analysis.
Conclusions:
- Commensal microbiota absence impairs olfactory function and disrupts OB metabolic networks.
- Findings suggest a novel mechanism for olfactory dysfunction related to microbiota dysbiosis.
- Provides a new perspective for understanding and potentially treating olfactory disorders.
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