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Piganelli, J. D.

Publications and source records attributed to Piganelli, J. D..

4 recordsLinked to original sources

Soluble LAG-3 Identifies a Dynamic Early T Cell Activation Window in self-reactivity, Type 1 Diabetes, and Broader Immune Responses.

Aims/hypothesisType 1 diabetes is a complex autoimmune disorder in which autoreactive CD4 and CD8 T cells destroy pancreatic beta-cells, resulting in insulin deficiency and hyperglycemia. Although genetic susceptibility, particularly certain HLA alleles, contributes to disease risk, not all genetically predisposed individuals develop Type 1 diabetes. Screening first degree relatives (FDRs) for islet autoantibodies (GAD65, IAA, IA-2, ZnT8) helps detect autoimmune activity. However, these serum markers arise only after T-helper cell activation, limiting early intervention opportunities. Since protein antigen recognition by B cells requires T-helper cell assistance through linked recognition, T cell activation precedes B cell activation and autoantibody production. Activation of these T cells leads to shedding of the immune-regulatory (activation) surface protein LAG-3 (Lymphocyte Activation Gene-3 or CD223), generating its soluble form, sLAG-3, that is detectable in circulation. We hypothesized that sLAG-3 may serve as an early biomarker of autoimmune activity preceding islet autoantibody development in type 1 diabetes. MethodsPlasma sLAG-3 levels were measured longitudinally in female diabetes-prone NOD mice and analyzed in relation to islet antigen-specific CD4 T cell expansion and diabetes onset. To mechanistically link autoreactive T cell activation to sLAG-3 release. Naive autoreactive C6.6.9 TCR-transgenic (TCR-Tg) CD4 T cells were adoptively transferred into NOD.SCID mice and longitudinal assessment for plasma sLAG-3, beta-cell antigen specific CD4 T cell tetramer profiles, and circulating insulin (Ins2) mRNA to determine ongoing beta-cell stress. In parallel, sLAG-3 levels were analyzed from different human cohorts, including FDRs of individuals with type 1 diabetes, using cross-sectional and longitudinal approaches. ResultsIn murine models, elevated sLAG-3 correlated with expansion of islet-specific CD4 T cells that preceded hyperglycemia and diabetes onset. In the adoptive transfer model, early increases in sLAG-3 and circulating Ins2 mRNA marked immune activation and emerging beta-cell stress prior to overt diabetes. In our human cohorts, sLAG-3 was detectable in autoantibody-negative and single-autoantibody-positive FDRs, with higher levels observed in progressors compared to non-progressors, and associated with high-risk HLA genotypes. Conclusions/interpretationThese findings identify sLAG-3 as a candidate biomarker of early T cell activation in type 1 diabetes that may precede islet autoantibody development. Integration of sLAG-3 with antigen-specific T cell and beta-cell stress markers could improve early risk stratification and inform preventive strategies before substantial loss of beta-cell. Prospective longitudinal studies aligned to seroconversion are required to validate sLAG-3 as a surrogate marker of early disease activity. Research in contextO_ST_ABSWhat is already known about this subject?C_ST_ABSO_LIBefore the clinical onset of hyperglycemia, type 1 diabetes is characterized by a prolonged preclinical phase in which autoreactive B and T cells mediate progressive beta-cell destruction. C_LIO_LICurrent risk stratification strategies rely mainly on genetic susceptibility (genomic DNA) and the detection of islet autoantibodies in plasma/serum. C_LIO_LIIslet autoantibodies arise only after CD4 T cell activation and therefore do not capture the earliest stages of immune dysregulation. C_LIO_LIConsequently, biomarkers that directly reflect early pathogenic T cell activity prior to, or independent of, seroconversion remain limited and insufficiently validated. C_LI What is the key question?Can plasma sLAG-3 levels, beta-cell antigen-specific CD4 T cell tetramer expression, and circulating Ins2 mRNA serve as very early biomarkers of autoimmune activity in type 1 diabetes and serve to better inform risk stratification, thereby informing preventive intervention strategies for the clinician? What are the new findings?O_LIsLAG-3 increases transiently during early antigen-specific CD4 T cell activation stage, precedes hyperglycemia in mouse models, and is elevated in autoantibody-negative and single-autoantibody-positive first-degree relatives who later progress to type 1 diabetes. C_LIO_LIsLAG-3 was associated with beta-cell antigen-specific CD4 T cell expansion, assessment of stress induced beta cell Ins2 mRNA release and high-risk HLA genotypes, indicating early autoimmune activation rather than established disease. C_LI How might this impact clinical practice in the foreseeable future?These findings support sLAG-3 as a candidate early biomarker of T cell activation, before or at the earliest stages of islet autoantibody development in some at-risk individuals. Integration of plasma sLAG-3 with beta-cell antigen specific CD4 T cell profiling and insulin mRNA measurements could complement current autoantibody-based screening, improve risk stratification, and enable earlier preventive interventions to preserve beta-cell function in patients at-risk for type 1 diabetes.

immunology↗

Islet-intrinsic sex differences in inflammatory signaling contribute to autoimmune diabetes susceptibility

Whereas most autoimmune diseases exhibit female predominance, type 1 diabetes (T1D) occurs more frequently in males after puberty, suggesting a role for sex hormones in disease modification. Because islet {beta} cells actively shape local immune responses, we hypothesized that sex-specific islet responses to inflammation contribute to this disparity. Using transcriptomic and proteomic analyses of human islets from male and female donors, we found that male islets exhibit a more aggressive response to proinflammatory cytokines, characterized by greater induction of interferon signaling and suppression of developmental signaling compared to female islets. Treatment of human islets and mouse {beta} cells with the sex hormone 17{beta}-estradiol (E2) suppressed inflammatory signaling and markers of {beta}-cell maturity while enhancing developmental gene programs. Complementary studies in non-obese diabetic (NOD) mice showed that E2 treatment reduces diabetes incidence and limits progression to severe insulitis. Islet single-cell RNA sequencing revealed that E2 treatment of NOD mice suppresses interferon signaling, chemokine production, and antigen presentation in {beta} cells, while reducing activation and cytotoxicity pathways in immune cells. In co-culture studies in vitro, E2 pretreatment of mouse islets reduces subsequent activation of T cells, and in an aggressive adoptive transfer model in vivo, E2 pretreatment of the recipient mice was found to attenuate hyperglycemia. These findings support a model in which E2-mediated {beta}-cell reprogramming reduces {beta}-cell immunogenicity and promotes local immune tolerance, offering mechanistic insight into sex-biased T1D susceptibility.

cell biology↗

Engineering sialylation in pigs: A promising strategy for overcoming xenograft rejection and revolutionizing organ transplantation.

The organ shortage crisis leaves over 100,000 people waiting for transplants, causing 6,000 deaths annually. To address this, pigs are being explored as potential donors. Despite advances like the FDA-approved GalSafe pig, immunological challenges remain. Key issues include strong antibody, innate, and cellular immune responses, along with coagulation problems due to differences in glycosides and sialic acid linkages, which prevent long-term xenograft survival. Hyperacute rejection, caused by instant blood-mediated immune reaction (IBMIR), is a persistent problem, characterized by inflammatory and thrombotic responses when, for example, xenogeneic islets contact blood or reperfusion post anastomosis of transplanted organ. To overcome IBMIR, and other innate immune mediated rejection, we expressed human sialyltransferase (ST8Sia6) in otherwise wild type, porcine endothelium, creating human-like sialic linkages on porcine glycoproteins and lipids. This increased expression of human sialic acid 2,8- linkage on porcine endothelial cells, enhanced sialic-acid-binding immunoglobulin-like lectin (Siglec) binding reducing immune effector mechanisms such as complement activation and cell cytotoxicity. It also correlated with reduced CTL-targeted killing, lower levels of CD107a, perforin, and IFN-{gamma} production. This coincided with higher immunoreceptor tyrosine-based inhibition motif (ITIM) induction, mirroring immune tolerance seen in fetal development and tumor immune evasion. Moreover, the landscape of the expression induced transcriptome of ST8Sia6, overexpression in porcine kidney cells revealed differential expression of genes involved in immune downregulation, cell signaling, and metabolic alteration. Expression of 2,8-linked disialic acids on porcine cells protected against immune effector mechanisms, reducing complement activation, immune cell activation, and CTL killing. These findings suggest that enhanced 2,8- linked disialic acid expression can modulate the innate and adaptive immune response, reducing xenograft rejection. This approach may improve xenotransplantation success, mitigate primary non-function in xenografts, and be applied to human iPSC-derived islets and other cell products. Further research into the specific mechanisms of these immunomodulatory effects could guide the development of effective strategies for xenotransplantation.

immunology↗

Beta cell extracellular vesicle PD-L1 as a novel regulator of CD8+ T cell activity and biomarker during the evolution of Type 1 Diabetes

Aims/hypothesisSurviving beta cells in type 1 diabetes respond to inflammation by upregulating programmed death-ligand 1 (PD-L1) to engage immune cell programmed death-1 (PD-1) and limit destruction by self-reactive immune cells. Extracellular vesicles (EVs) and their cargo can serve as biomarkers of beta cell health and contribute to islet intercellular communication. We hypothesized that the inflammatory milieu of type 1 diabetes increases PD-L1 in beta cell EV cargo and that EV PD-L1 may protect beta cells against immune-mediated cell death. MethodsBeta cell lines and human islets were treated with proinflammatory cytokines to model the proinflammatory type 1 diabetes microenvironment. EVs were isolated using ultracentrifugation or size exclusion chromatography and analysed via immunoblot, flow cytometry, and ELISA. EV PD-L1: PD-1 binding was assessed using a competitive binding assay and in vitro functional assays testing the ability of EV PD-L1 to inhibit NOD CD8 T cells. Plasma EV and soluble PD-L1 were assayed in plasma of individuals with islet autoantibody positivity (Ab+) or recent-onset type 1 diabetes and compared to non-diabetic controls. ResultsPD-L1 protein colocalized with tetraspanin-associated proteins intracellularly and was detected on the surface of beta cell EVs. 24-h IFN- or IFN-{square} treatment induced a two-fold increase in EV PD-L1 cargo without a corresponding increase in number of EVs. IFN exposure predominantly increased PD-L1 expression on the surface of beta cell EVs and beta cell EV PD-L1 showed a dose-dependent capacity to bind PD-1. Functional experiments demonstrated specific effects of beta cell EV PD-L1 to suppress proliferation and cytotoxicity of murine CD8 T cells. Plasma EV PD-L1 levels were increased in islet Ab+ individuals, particularly in those with single Ab+, Additionally, in from individuals with either Ab+ or type 1 diabetes, but not in controls, plasma EV PD-L1 positively correlated with circulating C-peptide, suggesting that higher EV-PD-L1 could be protective for residual beta cell function. Conclusions/interpretationIFN exposure increases PD-L1 on the beta cell EV surface. Beta cell EV PD-L1 binds PD1 and inhibits CD8 T cell proliferation and cytotoxicity. Circulating EV PD-L1 is higher in islet autoantibody positive patients compared to controls. Circulating EV PD-L1 levels correlate with residual C-peptide at different stages in type 1 diabetes progression. These findings suggest that EV PD-L1 could contribute to heterogeneity in type 1 diabetes progression and residual beta cell function and raise the possibility that EV PD-L1 could be exploited as a means to inhibit immune-mediated beta cell death. Research in contextO_ST_ABSWhat is already known about this subject? (maximum of 3 bullet points)C_ST_ABSO_LIExtracellular vesicles (EVs) serve as paracrine effectors in the islet microenvironment in health and disease. C_LIO_LIInterferon-alpha (IFN-) and IFN-gamma (IFN-{square}) are key cytokines contributing to type 1 diabetes pathophysiology and islet IFN signalling increases beta cell programmed death-ligand 1 (PD-L1) expression. C_LIO_LIUp-regulation of beta cell PD-L1 in the non-obese diabetic (NOD) mouse model delays progression of type 1 diabetes. C_LI What is the key question? (one bullet point only; formatted as a question)O_LIDo beta cells exposed to IFNs upregulate EV PD-L1 and can these changes be detected in circulation? C_LI What are the new findings? (maximum of 3 bullet points)O_LIIFN- or IFN-{square} exposure increases beta cell EV PD-L1 cargo in beta cell lines and human islets. C_LIO_LIPD-L1 is present on the surface of beta cell EVs, binds PD-1 and EV PD-L1 inhibits proliferation, activation and cytotoxicity of murine CD8 T cells. C_LIO_LIEV PD-L1 levels are higher in islet autoantibody positive individuals compared to nondiabetic controls and levels of circulating EV PD-L1 positively correlate with residual beta cell function in islet autoantibody positive individuals as well as in individuals with recent-onset type 1 diabetes. C_LI How might this impact on clinical practice in the foreseeable future? (one bullet point only)O_LIA beneficial effect of PD-L1+ EVs could ultimately be harnessed as an intervention to prevent autoimmune beta cell destruction. Circulating EV PD-L1 cargo has potential as a minimally invasive and informative biomarker to offer insights into the pathogenesis and progression of type 1 diabetes. C_LI

cell biology↗