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Salina, A.

Publications and source records attributed to Salina, A..

2 recordsLinked to original sources

Establishment of a murine resident dermal macrophage cell line.

Resident dermal macrophages (DMs) play essential roles in maintaining skin homeostasis and initiating inflammatory responses during tissue injury and against infectious agents. However, studies of their cellular mechanisms have been limited by their low abundance in steady-state skin and by technical challenges in isolating resident DMs. Here, we describe the generation and characterization of a novel DM cell line, termed SB89. F4/80+ skin-resident DMs were sorted and immortalized using J2 retroviral transduction. SB89 cells display a stable, homogeneous macrophage phenotype and distinct surface markers compared with Langerhans cells and alveolar macrophages. Functionally, SB89 cells efficiently phagocytose methicillin-resistant Staphylococcus aureus (MRSA), Escherichia coli, zymosan particles, and apoptotic cells, and effectively kill MRSA. Importantly, SB89 cells respond to LPS, as evidenced by production of IL-6, TNF, and IL-10, and by MRSA-induced production of inflammatory cytokines, chemokines, and eicosanoids. RNA-seq and gene ontology analyses revealed that SB89 cells elicit stronger responses in innate immunity, cell signaling, and epigenetic regulation than immortalized bone marrow-derived macrophages. SB89 cells are genetically tractable, amenable to gene silencing via RNAi and gene introduction via plasmid transfection. Overall, SB89 cells provide a renewable, dermis-imprinted macrophage model that preserves key functional and transcriptional features of resident DMs while reducing reliance on primary cells and animal models. This cell line represents a powerful platform for mechanistic, genetic, and translational studies in skin immunobiology.

immunology↗

Hyperglycemia promotes maladaptive Dectin-1 signaling and impairs skin antifungal host defense.

People with chronic hyperglycemia are more susceptible to fungal skin infections, but the mechanisms underlying their worse clinical outcomes remain unclear. Using both in vivo and in vitro models, we explored how hyperglycemia influences skin antifungal defenses and how GLP1 agonists might restore host defense in diabetic conditions. Hyperglycemic mice showed increased susceptibility to Candida albicans skin infections, with larger lesions and higher fungal loads at all time points tested. Histology revealed larger abscesses, more extensive myeloid cell infiltration, and poorer control of fungal invasion, associated with increased chemoattractant production on day 1 post-infection. Despite heightened inflammatory responses, macrophages and keratinocytes exposed to high glucose exhibit markedly impaired fungal ingestion. RNAseq analysis of C. albicans-infected dermal macrophages cultured in high glucose showed enrichment of genes related to antimicrobial effectors and the C-type lectin receptor pathway, including Clec7a (Dectin-1), while suppressing downstream signaling pathways required for effective phagocytosis. Pharmacologic blockade or genetic deletion of Dectin-1 restored fungal uptake under high-glucose conditions and improved host defense in vivo. Mechanistically, Dectin-1 signaling in hyperglycemia promoted increased prostaglandin E2 (PGE2) production via induction of microsomal Prostaglandin E Synthase-1 (mPGES-1), and inhibition of PGE2 synthesis rescued deficient phagocytic function. Finally, treatment with the glucagon-like peptide-1 (GLP-1) receptor agonist liraglutide reduced lesion size, fungal burden, inflammation, and tissue damage in diabetic mice, linking metabolic control to restoration of innate immune function. These findings identify maladaptive innate immune sensing as a key mechanism underlying susceptibility to fungal infection in diabetes and reveal how metabolic stress converts antifungal recognition pathways into drivers of inflammatory dysfunction.

immunology↗