Human Commensal Prevotella histicola Ameliorates Disease as Effectively as Interferon-Beta in the Experimental
Shailesh K Shahi1, Samantha N Jensen1,2, Alexandra C Murra1
1Department of Pathology, University of Iowa, Iowa City, IA, United States.
Abstract:
Gut microbiota has emerged as an important environmental factor in the pathobiology of multiple sclerosis (MS), an inflammatory demyelinating disease of the central nervous system (CNS). Both genetic and environmental factors have been shown to play an important role in MS. Among genetic factors, the human leukocyte antigen (HLA) class II allele such as HLA-DR2, DR3, DR4, DQ6, and DQ8 show the association with the MS. We have previously used transgenic mice expressing MS susceptible HLA class II allele such as HLA-DR2, DR3, DQ6, and DQ8 to validate significance of HLA alleles in MS. Although environmental factors contribute to 2/3 of MS risk, less is known about them. Gut microbiota is emerging as an imporatnt environmental factor in MS pathogenesis. We and others have shown that MS patients have distinct gut microbiota compared to healthy control (HC) with a lower abundance of Prevotella. Additionally, the abundance of Prevotella increased in patients receiving disease-modifying therapies (DMTs) such as Copaxone and/or Interferon-beta (IFNβ). We have previously identified a specific strain of Prevotella (Prevotella histicola), which can suppress experimental autoimmune encephalomyelitis (EAE) disease in HLA-DR3.DQ8 transgenic mice. Since Interferon-β-1b [IFNβ (Betaseron)] is a major DMTs used in MS patients, we hypothesized that treatment with the combination of P. histicola and IFNβ would have an additive effect on the disease suppression. We observed that treatment with P. histicola suppressed disease as effectively as IFNβ. Surprisingly, the combination of P. histicola and IFNβ was not more effective than either treatment alone. P. histicola alone or in combination with IFNβ increased the frequency and number of CD4+FoxP3+ regulatory T cells in the gut-associated lymphoid tissue (GALT). Treatment with P. histicola alone, IFNβ alone, and in the combination decreased frequency of pro-inflammatory IFN-γ and IL17-producing CD4+ T cells in the CNS. Additionally, P. histicola alone or IFNβ alone or the combination treatments decreased CNS pathology, characterized by reduced microglia and astrocytic activation. In conclusion, our study indicates that the human gut commensal P. histicola can suppress disease as effectively as commonly used MS drug IFNβ and may provide an alternative treatment option for MS patients.
Insights
The gut bacterium Prevotella histicola shows promise as a multiple sclerosis (MS) treatment, suppressing disease similarly to Interferon-beta (IFNβ). This research explores P. histicola as a potential alternative therapy for MS patients.
Area of Science:
- Neuroimmunology
- Microbiome Research
- Autoimmune Diseases
Background:
- Multiple Sclerosis (MS) pathogenesis involves genetic and environmental factors, with gut microbiota emerging as a key environmental influence.
- MS patients exhibit distinct gut microbiota compositions compared to healthy controls, often with reduced Prevotella abundance.
- Disease-modifying therapies (DMTs) like Interferon-beta (IFNβ) are used in MS, and Prevotella abundance can increase with such treatments.
Purpose of the Study:
- To investigate the therapeutic potential of Prevotella histicola, a gut commensal, in a mouse model of MS.
- To evaluate if combining P. histicola with Interferon-beta (IFNβ) offers additive benefits in suppressing MS-like disease.
- To elucidate the immunological mechanisms underlying the effects of P. histicola and IFNβ treatment on immune cells and CNS pathology.
Main Methods:
- Utilized HLA-DR3.DQ8 transgenic mice, susceptible to experimental autoimmune encephalomyelitis (EAE), a model for MS.
- Administered P. histicola, IFNβ, or a combination of both to EAE-induced mice.
- Assessed disease severity, analyzed immune cell populations (T regulatory cells, pro-inflammatory T cells) in gut-associated lymphoid tissue (GALT) and CNS, and evaluated CNS pathology (microglia and astrocyte activation).
Main Results:
- P. histicola alone suppressed EAE disease as effectively as IFNβ.
- The combination of P. histicola and IFNβ did not provide superior disease suppression compared to either treatment alone.
- Both P. histicola and IFNβ treatments increased regulatory T cells in GALT and decreased pro-inflammatory T cells (IFN-γ, IL17) in the CNS, leading to reduced CNS pathology.
Conclusions:
- The gut commensal P. histicola demonstrates significant disease-suppressing capabilities in an MS model, comparable to the established MS drug IFNβ.
- Combined therapy with P. histicola and IFNβ did not yield enhanced therapeutic effects.
- P. histicola represents a potential alternative or complementary therapeutic strategy for managing multiple sclerosis.
More Related Videos
05:44Author Spotlight: Creating a Versatile Experimental Autoimmune Encephalomyelitis Model Relevant for Both Male and Female Mice
Published on: October 13, 2023
08:47Induction of Experimental Autoimmune Encephalomyelitis in Mice and Evaluation of the Disease-dependent Distribution of Immune Cells in Various Tissues
Published on: May 8, 2016
