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Updated: Apr 4, 2026

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Microbiota Analysis Using Two-step PCR and Next-generation 16S rRNA Gene Sequencing
Published on: October 15, 2019
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Immune-gut-metabolite Interactions in Multiple Sclerosis: A Mendelian Randomization and Mediation Study
Zenghui Liu1,2, Lu Kuang2, Xiaohui Zhou1
1Department of Immunology, Mudanjiang Medical University, Mudanjiang, Heilongjiang, China.
Current Neurovascular Research
|April 3, 2026
Summary
This study used genetic data to find causal links between immune cells, proteins, gut microbes, and metabolites in multiple sclerosis (MS). Findings reveal complex interactions, suggesting new therapeutic targets for MS.
Area of Science:
- Immunology
- Microbiology
- Metabolomics
- Neuroscience
Background:
- Multiple sclerosis (MS) is a complex autoimmune disease involving inflammation and neurodegeneration.
- The roles of immune dysregulation, gut microbiota, and metabolic alterations in MS are suspected but not fully understood.
- Causal relationships between these factors and MS pathogenesis require further investigation.
Purpose of the Study:
- To investigate the causal effects of immune cell phenotypes, inflammatory proteins, gut microbiota, and plasma metabolites on MS using genetic data.
- To explore potential reverse causality and mediating pathways in MS pathogenesis.
- To identify novel therapeutic targets by elucidating the immune-microbiota-metabolite axis in MS.
Main Methods:
- Two-sample Mendelian randomization (MR) analyses were conducted using publicly available genetic data.
- Investigated 731 immune cell phenotypes, 91 inflammatory proteins, 473 gut microbiota taxa, and 1,400 plasma metabolites.
- Sensitivity analyses, bidirectional MR, and two-step mediation analyses were employed to ensure robustness and explore complex relationships.
Main Results:
- Identified significant causal associations between 13 immune cell phenotypes, 3 inflammatory proteins, 16 gut microbiota, and 14 plasma metabolites with MS.
- Bidirectional MR indicated reverse causality for certain gut microbiota.
- Mediation analyses revealed complex pathways, including specific T cell subsets, microbial genera, and metabolites influencing MS risk and protection.
Conclusions:
- Provided robust genetic evidence for the causal roles of immune factors, gut microbiota, and metabolites in MS.
- Highlighted intricate interaction networks within the immune-microbiota-metabolite axis.
- Offered novel insights into MS pathogenesis and potential avenues for therapeutic intervention.
