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Biology subjects

Kaylan, K. B.

Publications and source records attributed to Kaylan, K. B..

3 recordsLinked to original sources

A Novel PD-L1 Splice Isoform Modulates β Cell Communication in Response to Interferon Signaling

{beta} cell expression of the immune checkpoint ligand PD-L1 (encoded by CD274) limits autoimmune {beta} cell destruction in type 1 diabetes (T1D). {beta} cell display PD-L1 not only at the cell surface but also secreted on extracellular vesicles (EVs), which bind PD-1 and restrain CD8+ T cell activation. {beta} cell IFN signaling is an early driver of T1D pathogenesis, yet the mechanisms linking IFN signaling to the fate of PD-L1 protein remain undefined. Here, we identify an IFN- and coxsackievirus-inducible alternatively spliced isoform of PD-L1, PD-L1{Delta}3, lacking cassette exon 3 and generated in human {beta} cells and islets in response to IFN signaling or viral infection. PD-L1{Delta}3 transcripts are elevated in islets from donors with single autoantibody positivity (AAB+) and T1D. Unlike full-length PD-L1, which localizes to the plasma membrane, PD-L1{Delta}3 is retained intracellularly and loses the capacity to bind PD-1. Functionally, PD-L1{Delta}3 fails to suppress CD8+ and CD4+ T cell proliferation, activation, and cytotoxic cytokine release, and is not efficiently sorted into EVs. Convergently, a germline CD274 splice-site variant (c.682+1G>A) found in siblings with neonatal T1D yields a protein with the same intracellular retention, reduced {beta} cell PD-1 binding, and reduced {beta} cell and circulating EV PD-L1. Together these findings define PD-L1{Delta}3 as an IFN-induced splice variant that diverts PD-L1 away from its immunoregulatory, EV-competent form, revealing a post-transcriptional axis that shapes {beta} cell immune communication.

cell biology↗

The G Protein-Coupled Receptor GPR31 Promotes Pro-inflammatory Responses in Pancreatic Islets and Macrophages

In type 1 diabetes (T1D), the innate and adaptive immune systems attack and eventually destroy the insulin-secreting pancreatic {beta} cells. During this process, {beta} cells activate inflammatory signaling pathways that augment the dysfunction and destruction imposed by cellular autoimmunity. The 12-lipoxygenase (12-LOX) pathway produces the pro-inflammatory eicosanoid 12-HETE, which induces oxidative and endoplasmic reticulum stress and results in diminished insulin secretion and apoptosis. The G protein-coupled receptor GPR31 has been identified as a putative receptor for 12-HETE. In this study, we generated conventional GPR31 knockout (KO) mice on the C57BL/6J background. To interrogate the role of GPR31 in {beta} cells, we treated islets from wildtype and Gpr31b KO mice with pro-inflammatory cytokines and subjected the islets to RNA sequencing. Differentially expressed pathways in Gpr31b KO islets included those pertaining to inflammation and oxidative stress, consistent with functional studies that demonstrated reduced cytokine-induced oxidative stress in Gpr31b KO islets compared to wildtype controls. Bone marrow-derived macrophages from Gpr31b KO mice showed reduced macrophage migration and decreased inflammatory IFN- and IFN-{gamma} signaling by RNA sequencing. To mimic islet and macrophage inflammation as seen in T1D, wildtype and Gpr31b KO mice were treated with the diabetogenic toxin streptozotocin. Compared to wildtype, Gpr31b KO mice had improved glucose tolerance and preserved {beta}-cell mass. siRNA knockdown of Gpr31b in non-obese diabetic (NOD) mice reduced insulitis, macrophage infiltration, and oxidative stress. Collectively, these findings are consistent with previously published data using 12/15-LOX KO mice and suggest that GPR31 mediates the pro-inflammatory responses of 12-HETE in both {beta} cells and macrophages.

molecular biology↗

12-Lipoxygenase inhibition improves glucose homeostasis and obesity-associated inflammation in human gene replacement mice

Obesity-associated inflammation is characterized by macrophage infiltration into peripheral tissues, contributing to the progression of prediabetes and type 2 diabetes (T2D). The enzyme 12-lipoxygenase (12-LOX) catalyzes the formation of pro-inflammatory eicosanoids and is known to promote the migration of macrophages, yet its role in obesity-associated inflammation remains incompletely understood. Furthermore, differences between mouse and human orthologs of 12-LOX have limited efforts to study existing pharmacologic inhibitors of 12-LOX. In this study, we utilized a human gene replacement mouse model in which the gene encoding mouse 12-LOX (Alox15) is replaced by the human ALOX12 gene. As a model of obesity and dysglycemia, we administered these mice a high-fat diet. We subsequently investigated the effects of VLX-1005, a potent and selective small molecule inhibitor of human 12-LOX. Oral administration of VLX-1005 resulted in improved glucose homeostasis, decreased {beta} cell dedifferentiation, and reduced macrophage infiltration in islets and adipose tissue. Analysis of the stromal vascular fraction from adipose tissue showed a reduction in myeloid cells and cytokine expression with VLX-1005 treatment, indicating decreased adipose tissue inflammation. In a distinct mouse model in which Alox15 was selectively deleted in myeloid cells, we observed decreased {beta} cell dedifferentiation and reduced macrophage infiltration in both islets and adipose tissue, suggesting that the effects of VLX-1005 may relate to the inhibition of 12-LOX in macrophages. These findings highlight 12-LOX as a key factor in obesity-associated inflammation and suggest that 12-LOX inhibition could serve as a therapeutic strategy to improve glucose homeostasis and peripheral inflammation in the setting of obesity and T2D.

physiology↗