61 research outputs found

    Independent effects of sham laparotomy and anesthesia on hepatic microRNA expression in rats

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    Background: Studies on liver regeneration following partial hepatectomy (PH) have identified several microRNAs (miRNAs) that show a regulated expression pattern. These studies involve major surgery to access the liver, which is known to have intrinsic effects on hepatic gene expression and may also affect miRNA screening results. We performed two-third PH or sham laparotomy (SL) in Wistar rats to investigate the effect of both procedures on miRNA expression in liver tissue and corresponding plasma samples by microarray and qRT-PCR analyses. As control groups, non-treated rats and rats undergoing anesthesia only were used. Results: We found that 49 out of 323 miRNAs (15%) were significantly deregulated after PH in liver tissue 12 to 48 hours postoperatively (>20% change), while 45 miRNAs (14%) were deregulated following SL. Out of these miRNAs, 10 miRNAs were similarly deregulated after PH and SL, while one miRNA showed opposite regulation. In plasma, miRNA upregulation was observed for miR-133a and miR-133b following PH and SL, whereas miR-100 and miR-466c were similarly downregulated following anesthesia and surgery. Conclusions: We show that miRNAs are indeed regulated by sham laparotomy and anesthesia in rats. These findings illustrate the critical need for finding appropriate control groups in experimental surgery

    A novel role of CD4 Th17 cells in mediating cardiac allograft rejection and vasculopathy

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    T-bet plays a crucial role in Th1 development. We investigated the role of T-bet in the development of allograft rejection in an established MHC class II–mismatched (bm12 into B6) model of chronic allograft vasculopathy (CAV). Intriguingly, and in contrast to IFN-γ−/− mice that are protected from CAV, T-bet−/− recipients develop markedly accelerated allograft rejection accompanied by early severe vascular inflammation and vasculopathy, and infiltration by predominantly IL-17–producing CD4 T cells. Concurrently, T-bet−/− mice exhibit a T helper type 1 (Th1)–deficient environment characterized by profound IFN-γ deficiency, a Th2 switch characterized by increased production of interleukin (IL) 4, IL-5, IL-10, and IL-13 cytokines, as well as increased production of the proinflammatory cytokines IL-6, IL-12p40, and IL-17. Neutralization of IL-17 inhibits accelerated allograft rejection and vasculopathy in T-bet−/− mice. Interestingly, CD4 but not CD8 T cell deficiency in T-bet−/− mice affords dramatic protection from vasculopathy and facilitates long-term graft acceptance. This is the first study establishing that in the absence of Th1-mediated alloimmune responses, CD4 Th17 cells mediate an aggressive proinflammatory response culminating in severe accelerated allograft rejection and vasculopathy. These results have important implications for the development of novel therapies to target this intractable problem in clinical solid organ transplantation

    MicroRNA Expression Data Reveals a Signature of Kidney Damage following Ischemia Reperfusion Injury

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    Ischemia reperfusion injury (IRI) is a leading cause of acute kidney injury, a common problem worldwide associated with significant morbidity and mortality. We have recently examined the role of microRNAs (miRs) in renal IRI using expression profiling. Here we conducted mathematical analyses to determine if differential expression of miRs can be used to define a biomarker of renal IRI. Principal component analysis (PCA) was combined with spherical geometry to determine whether samples that underwent renal injury as a result of IRI can be distinguished from controls based on alterations in miR expression using our data set consisting of time series measuring 571 miRs. Using PCA, we examined whether changes in miR expression in the kidney following IRI have a distinct direction when compared to controls based on the trajectory of the first three principal components (PCs) for our time series. We then used Monte Carlo methods and spherical geometry to assess the statistical significance of these directions. We hypothesized that if IRI and control samples exhibit distinct directions, then miR expression can be used as a biomarker of injury. Our data reveal that the pattern of miR expression in the kidney following IRI has a distinct direction based on the trajectory of the first three PCs and can be distinguished from changes observed in sham controls. Analyses of samples from immunodeficient mice indicated that the changes in miR expression observed following IRI were lymphocyte independent, and therefore represent a kidney intrinsic response to injury. Together, these data strongly support the notion that IRI results in distinct changes in miR expression that can be used as a biomarker of injury

    The Th17 lineage in heart transplant rejection: Examining plasticity and pathogenicity

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    Abstract Heart transplants are the only treatment for end-stage heart failure. Over 3000 heart transplants were performed in the United States in 2016, making heart transplant the most common cadaveric organ transplant. Long-term survival of heart transplants remains a significant clinical concern, and median survival rates after the first year have not significantly improved in 25 years. We have previously shown that pro-inflammatory co-morbidities such as hyperlipidemia contribute to accelerated IL-17 dependent rejection of the transplanted heart. Hyperlipidemia, an increased level of triglycerides and lipids in the blood, is extremely prevalent in the transplant patient population, with nearly 90% of heart transplant recipients becoming hyperlipidemic after their transplant, despite universal use of statins in the transplant patient population. The work described in this poster aims to further explore the mechanisms by which hyperlipidemia promotes Th17-mediated graft rejection, especially the potential interplay between the hyperlipidemic state and CD4 T cell plasticity. By using a MHC-II mismatched heart graft model, immunocytochemistry staining, a Th17 lineage trace, and genetic and chemical ablation of inflammatory cytokines and lineages, we aim to elucidate the differences in inflammatory T-cell infiltrate between graft-destructive accelerated hyperlipidemic rejection and chronic non-hyperlipidemic transplant rejection. This work may lead to more precise targeting of immunosuppression in heart transplant patients and improved survival and quality of life in this patient population</jats:p
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