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Biology subjects

Sifuentes-Dominguez, L.

Publications and source records attributed to Sifuentes-Dominguez, L..

2 recordsLinked to original sources

Type I interferon signaling promotes mucosal inflammation in murine models of colitis

Type I interferons (IFN-Is) play a critical role in innate immunity, modulating the host response. While dysregulated IFN-I signaling has been implicated in autoimmune and infectious disorders, its role in inflammatory bowel disease (IBD) remains unclear. In this study, we extensively assessed the function of IFN-I signaling in human IBD and murine models of colitis. Expression of IFN-I signature genes was elevated in patients with active ulcerative colitis as well as multiple murine models of colitis. Single cell RNA sequencing revealed that upregulated IFN-I signature genes were enriched in myeloid cells, which exhibited increased expression of IFN receptors during mucosal inflammation. Mice carrying gain-of-function alleles of Ifnar1, a subunit of IFN-I receptor, showed heightened IFN-I signaling and altered colonic immune homeostasis at baseline, and were more susceptible to experimental colitis. In contrast, postnatal inhibition of IFNAR1, using either an inducible transgenic mouse model or an anti-IFNAR1 blocking antibody, protected against experimental colitis. Taken together, our findings reveal a previously under-recognized pathogenic role of IFN-I in IBD and provide a rationale for therapeutic intervention targeting this pathway.

immunology↗

The CCC complex directs phagosomal maturation and bactericidal activity in macrophages through PI(3)P regulation

The evolutionarily conserved COMMD/CCDC22/CCDC93 (CCC) complex regulates endolysosomal function and is required for effective antibacterial immunity. However, the mechanisms linking the CCC complex to macrophage function remain poorly understood. Using bone marrow-derived macrophages, we found that CCC deficiency impaired bacterial clearance and disrupted phagosome maturation, as evidenced by defective phagosomal membrane remodeling, reduced phagosome-endoplasmic reticulum contacts, and impaired phagosome-lysosome fusion. These defects were independent of the CCC complex interaction partner, Retriever. CCC-deficient macrophages exhibited excessive phosphatidylinositol 3-phosphate (PI(3)P) accumulation on phagosomal membranes due to markedly reduced recruitment of the PI(3)P phosphatase MTMR2. Restoration of normal PI(3)P levels rescued bactericidal activity, establishing aberrant PI(3)P regulation as the principal defect affecting CCC-deficient macrophages. These findings identify a previously unrecognized Retriever-independent function of the CCC complex in regulating PI(3)P dynamics during phagosome maturation, a process essential for efficient bacterial clearance and innate immune defense.

cell biology↗