Search bioRxiv⌕ Search

Biology subjects

Satoh-Takayama, N.

Publications and source records attributed to Satoh-Takayama, N..

2 recordsLinked to original sources

Epigenomic and transcriptomic germ-free ageing atlas reveals sterile inflammation as an intrinsic ageing feature

Inflammageing is a hallmark of ageing. Commensal microbiota plays crucial roles in maintaining tissue homeostasis, yet its impact on cellular ageing and inflammageing remains poorly understood. Here we present a comprehensive single-cell epigenomic and transcriptomic atlas of tissues from mice aged under specific pathogen-free (SPF) or germ-free (GF) conditions. Microbiota conferred beneficial effects in young mice but accelerated various ageing features in old, such as age-related AP-1 pathway upregulation, senescence and transcriptomic alterations, likely due to age-associated dysbiosis. Strikingly, inflammatory signatures persisted across cell types in aged GF mouse tissues, establishing sterile inflammation as an intrinsic feature of ageing. Age-associated B cells expanded equally under GF and SPF conditions, raising the possibility that they function as intrinsic, microbiota-independent drivers of inflammageing and potential therapeutic targets. The atlas provides a resource for distinguishing intrinsic ageing features from those modulated by the microbiota, illuminating mechanisms of cellular ageing and potential anti-ageing interventions. HighlightsSterile inflammation and age-associated B cell expansion are prominent intrinsic ageing features The upregulation of age-associated AP-1 pathways and senescence of alveolar macrophages are attenuated in germ-free condition Germ-free condition induces premature ageing-like features in young mouse tissues but delays ageing features in old mice across multiple cell types

genomics↗

Runx/Cbfβ regulates the development of tolerogenic Thetis cells

Establishing immune tolerance to gut microbiota and food antigens upon first exposures during early life is essential to prevent inflammatory bowel diseases and food allergy and depends on induction of peripherally induced Ror{gamma}t expressing regulatory T (Ror{gamma}t+ pTreg) cells1, 2, 3, 4, 5, 6. Recent studies have identified a critical role for Ror{gamma}t expressing antigen-presenting cells (APC), Thetis cells (TCs), in peripheral regulatory T (pTreg) cell differentiation and tolerance to food and commensal microbes7, 8, 9, 10, 11. TCs encompass four distinct subsets, and a subset of TCs, TC IV induces pTreg differentiation, but the transcription factors that control their differentiation are not fully known. Here, using orthogonal genetic approaches to impair Runx/Cbf{beta} activity, we show that development of specific TCs subsets is regulated by Runx/Cbf{beta} transcriptional factor complexes. While attenuated Runx3 by germline mutations resulted in a severe reduction of all Ror{gamma}t+ APCs, mice lacking one of two Cbf{beta} splicing variants, Cbf{beta}2, exhibited a loss of TC II, III and TC IV subsets with associated loss of Ror{gamma}t+ pTreg cells. Conditional inactivation of Runx1 and Runx3 genes by CD11c-Cre led to a specific loss of TC III and TC IV subsets. Strikingly, CD11c-Cre driven transgenic Runx expression, particularly Runx1, led to enhanced TC IV differentiation and thus Ror{gamma}t+ pTreg cells. Furthermore, transgenic Cbf{beta}2 by CD11c-Cre recovered only TC IV subset with restoration of Ror{gamma}t+ pTreg in Cbf{beta}2-deficient mice. Collectively, our findings establish a critical pathway for TC IV differentiation and provide new insights into therapeutic interventions to promote Ror{gamma}t+ pTreg induction in autoimmune and inflammatory diseases.

immunology↗