4.6 Review

Molecular mechanisms controlling age-associated B cells in autoimmunity*

期刊

IMMUNOLOGICAL REVIEWS
卷 307, 期 1, 页码 79-100

出版社

WILEY
DOI: 10.1111/imr.13068

关键词

age-associated B cells; CD11c(+)T-bet(+); Def6; IRF; IRF5; IRF8; SWAP-70; SWEF; T-bet

资金

  1. National Institutes of Health [AR064883, AR070146, T32 AR071302]
  2. Lupus Research Alliance
  3. Rheumatology Research Foundation
  4. Marina Kellen French and the Anna-Maria and Stephen Kellen Foundation
  5. Barbara Volcker Center
  6. Giammaria Giuliani and the Ambrose Monell Foundation
  7. Peter Jay Sharp Foundation
  8. Tow Foundation

向作者/读者索取更多资源

Age-associated B cells (ABCs) play critical roles in the pathogenesis of autoimmune disorders, aging-associated diseases, and infections. They exhibit a distinctive phenotype and express T-bet and CD11c markers, hence known as CD11c(+)T-bet(+) B cells. The formation of ABCs is promoted by specific combinations of innate and adaptive signals.
Age-associated B cells (ABCs) have emerged as critical components of immune responses. Their inappropriate expansion and differentiation have increasingly been linked to the pathogenesis of autoimmune disorders, aging-associated diseases, and infections. ABCs exhibit a distinctive phenotype and, in addition to classical B cell markers, often express the transcription factor T-bet and myeloid markers like CD11c; hence, these cells are also commonly known as CD11c(+)T-bet(+) B cells. Formation of ABCs is promoted by distinctive combinations of innate and adaptive signals. In addition to producing antibodies, these cells display antigen-presenting and proinflammatory capabilities. It is becoming increasingly appreciated that the ABC compartment exhibits a high degree of heterogeneity, plasticity, and sex-specific regulation and that ABCs can differentiate into effector progeny via several routes particularly in autoimmune settings. In this review, we will discuss the initial insights that have been obtained on the molecular machinery that controls ABCs and we will highlight some of the unique aspects of this control system that may enable ABCs to fulfill their distinctive role in immune responses. Given the expanding array of autoimmune disorders and pathophysiological settings in which ABCs are being implicated, a deeper understanding of this machinery could have important and broad therapeutic implications for the successful, albeit daunting, task of targeting these cells.

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