Colonization by Akkermansia muciniphila modulates central nervous system autoimmunity in an ecological
Daniel Peipert1, Theresa L Montgomery1, Lucinda C Toppen2
1Department of Biomedical and Health Sciences, University of Vermont, Burlington, VT, United States.
Introduction:
Multiple sclerosis is autoimmune disease of the central nervous system (CNS) in which myelin-reactive immune attack drives demyelination and subsequent disability. Various studies have documented elevated abundance of the commensal gut bacterium Akkermansia muciniphila (A. muciniphila) in people with multiple sclerosis compared to healthy control subjects, suggesting that its elevated abundance may be a risk factor for the development of CNS autoimmunity. However, A. muciniphila is considered beneficial in various other pathological contexts, and recent studies suggest that A. muciniphila may be paradoxically associated with reduced disability and progression in multiple sclerosis. Moreover, experimental modulation of A. muciniphila levels in experimental autoimmune encephalomyelitis (EAE), an autoimmune model of multiple sclerosis, has generated conflicting results, suggesting that the effects of this microbe on CNS autoimmunity could be context-dependent.
Methods:
To address this possibility, we generated two distinct microbiome models in C57BL/6J mice, each stably colonized by A. muciniphila or A. muciniphila-free, providing divergent ecological contexts in which A. muciniphila may exert a differential impact. We used EAE, flow cytometry, full-length 16S DNA sequencing, and mass spectrometry to assess the impact of A. muciniphila colonization on neurological outcomes, immune responses, gut microbiome composition, and short-chain fatty acid (SCFA) production, respectively. Dietary intervention was used to assess the functional consequences of differences in gut microbiota metabolic capacity.
Results:
We found that A. muciniphila colonization increased EAE severity only in a specific microbiome context, in conjunction with increased Th17 responses and CNS-infiltrating immune cells. Profiling of gut microbiome composition revealed that A. muciniphila colonization drove a reduction of Clostridia, key producers of SCFAs, specifically in the microbiome model in which A. muciniphila exacerbates EAE. Inferred metagenomic analyses suggested reduced SCFA production in the presence of A. muciniphila, which was confirmed by mass spectrometry. Consistently, provision of high dietary fiber as a substrate for SCFA production suppressed EAE only in the context of the Clostridia-rich microbiome sensitive to A. muciniphila colonization.
Discussion:
Taken together, our data suggest that the effect of A. muciniphila on CNS autoimmunity is highly dependent on the overall composition of the gut microbiome and suggest that this microbe may contribute to decreased gut SCFA metabolism in multiple sclerosis.
Insights
The gut bacterium Akkermansia muciniphila (A. muciniphila) can worsen multiple sclerosis (MS) severity, but only within specific gut microbiome contexts. This exacerbation is linked to reduced short-chain fatty acid (SCFA) production.
Area of Science:
- Neuroimmunology
- Microbiome Research
- Autoimmune Diseases
Background:
- Multiple sclerosis (MS) involves CNS autoimmunity, with gut bacterium Akkermansia muciniphila (A. muciniphila) showing varied associations.
- Elevated A. muciniphila is linked to MS risk, yet paradoxically, it may also correlate with reduced disability in MS patients.
- Conflicting results from experimental models suggest A. muciniphila's impact on CNS autoimmunity is context-dependent.
Purpose of the Study:
- To investigate the context-dependent effects of A. muciniphila on CNS autoimmunity.
- To determine how A. muciniphila influences neurological outcomes and immune responses within distinct gut microbiome environments.
- To explore the role of short-chain fatty acids (SCFAs) in mediating A. muciniphila's impact on experimental autoimmune encephalomyelitis (EAE).
Main Methods:
- Generation of two distinct mouse microbiome models: one colonized with A. muciniphila and one A. muciniphila-free.
- Assessment of EAE severity, immune cell infiltration (flow cytometry), gut microbiome composition (16S sequencing), and SCFA production (mass spectrometry).
- Dietary intervention with high-fiber to modulate SCFA production and assess functional consequences.
Main Results:
- A. muciniphila exacerbated EAE severity specifically in a microbiome context associated with increased Th17 responses and CNS immune cell infiltration.
- In this context, A. muciniphila colonization reduced the abundance of SCFA-producing Clostridia, leading to decreased SCFA levels.
- High-fiber diet suppressed EAE in the susceptible microbiome context, highlighting the role of SCFA metabolism.
Conclusions:
- The impact of A. muciniphila on CNS autoimmunity is critically dependent on the host's gut microbiome composition.
- A. muciniphila may contribute to reduced gut SCFA metabolism in the context of multiple sclerosis.
- Targeting SCFA production presents a potential therapeutic avenue for modulating A. muciniphila's effects in MS.
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