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DeJong, C. S.

Publications and source records attributed to DeJong, C. S..

2 recordsLinked to original sources

Converging cytokine and metabolite networks shape asymmetric T cell fate at the term human maternal-fetal interface

Placentation presents immune conflict between mother and fetus, yet in normal pregnancy maternal immunity against infection is maintained without expense to fetal tolerance. This is believed to result from adaptations at the maternal-fetal interface (MFI) which affect T cell programming, but the identities (i.e., memory subsets and antigenic specificities) of T cells and the signals that mediate T cell fates and functions at the MFI remain poorly understood. We found intact recruitment programs as well as pro-inflammatory cytokine networks that can act on maternal T cells in an antigen-independent manner. These inflammatory signals elicit T cell expression of co-stimulatory receptors necessary for tissue retention, which can be engaged by local macrophages. Although pro-inflammatory molecules elicit T cell effector functions, we show that additional cytokine (TGF-{beta}1) and metabolite (kynurenine) networks may converge to tune T cell function to those of sentinels. Together, we demonstrate an additional facet of fetal tolerance, wherein T cells are broadly recruited and restrained in an antigen-independent, cytokine/metabolite-dependent manner. These mechanisms provide insight into antigen-nonspecific T cell regulation, especially in tissue microenvironments where they are enriched.

immunology↗

The atypical RNA-binding protein TAF15 regulates dorsoanterior neural development through diverse mechanisms in Xenopus tropicalis.

The FET family of atypical RNA-binding proteins includes Fused in sarcoma (Fus), Ewings sarcoma (EWS), and the TATA-binding protein-associate factor 15 (TAF15). FET proteins are highly conserved, suggesting specialized requirements for each protein. Fus regulates splicing of transcripts required for mesoderm differentiation and cell adhesion in Xenopus, but roles that EWS and TAF15 play remain unknown. Here we analyze the roles of maternally deposited and zygotically transcribed TAF15, which is essential for the proper development of dorsoanterior neural tissues. By measuring changes in exon usage and transcript abundance from TAF15-depleted embryos we found TAF15 may regulate dorsoanterior neural development through fgfr4 and ventx2.1. TAF15 uses distinct mechanisms to downregulate FGFR4 expression: 1) retention of a single intron within fgfr4 when maternal and zygotic TAF15 is depleted, and 2) reduction of total fgfr4 transcript when zygotic TAF15 alone is depleted. The two mechanisms of gene regulation (post-transcriptional vs transcriptional) suggest TAF15-mediated gene regulation is target and cofactor-dependent, depending on the milieu of factors that are present at different times of development.

developmental biology↗