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Regen, T.

Publications and source records attributed to Regen, T..

2 recordsLinked to original sources

Gut microbiome changes over the course of multiple sclerosis differentially influence autoimmune neuroinflammation

Multiple sclerosis (MS) is the leading inflammatory and demyelinating disease of the central nervous system (CNS). MS begins with systemic inflammation and over time is compartmentalized within the CNS. Studies in humans, supported by animal experiments, suggest that the gut microbiome plays an important role in MS development. However, despite the dynamic nature of the disease, little is known on how the microbiome evolves over the course of MS and how these microbiome changes influence immune responses and disease progression. Here, using high-throughput sequencing, we identified distinct gut microbial communities with differential functional potential in MS patients stratified by time since disease onset. Importantly, using a humanized mouse model, we demonstrate that differences in microbial composition significantly impact disease outcomes. Microbiota from more recently diagnosed MS patients induced severe neuroimmune disease in mice, whereas microbiota from long-term MS patients and healthy individuals elicited only mild disease. Accordingly, we found that microbiota from earlier diagnosed MS patients exhibit a higher inflammatory potential. This was characterized by a reduced capacity to induce regulatory T cells in mice and an increased induction of pro-inflammatory cytokines in human peripheral blood mononuclear cells. Together, our results suggest that the ability of the gut microbiome to promote systemic inflammation and trigger MS pathology shifts over the course of the disease and is primarily critical during its early stages. These findings indicate that a limited therapeutic window should be considered when designing microbiome-based interventions for MS.

immunology↗

Aging-Associated Microbiota Drives Treg Dysfunction via TNF Signaling

Aging is associated with a chronic, low-grade inflammatory state referred to as inflammaging, which contributes to impaired immune regulation and increased susceptibility to disease. While regulatory T (Treg) cells are key mediators of immune homeostasis, their role in the context of age-related inflammation remains poorly understood. Here we demonstrate that age-related changes in the microbiota promote impaired Treg cell function, resulting in the differentiation of inflammatory T cells. In agreement, we find that aged germ-free (GF) mice exhibited a more balanced immune profile, where the Treg cells are functional and pro-inflammatory mediators are reduced, suggesting that microbial exposure is essential for the establishment of inflammaging. Furthermore, we show that the use of old microbiota in young animals was sufficient to induce pro-inflammatory T cell responses and impaired mucosal Treg cell proliferation, while young microbiota restored Treg cell function in old animals. Mechanistically, we show that exposure to aged microbiota was associated with sustained TNF signaling, elevated oxidative stress, DNA damage, and increased expression of senescence markers such as {gamma}H2AX and p16 in Treg cells. These findings uncover a microbiota-TNF-dependent mechanism by which age-associated microbial dysbiosis drives Treg cell dysfunction and promotes immune aging, highlighting the therapeutic potential of microbiota-targeted strategies to restore immune homeostasis in the elderly.

immunology↗