Person: Otterbein, Leo
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Publication Induction of Protective Genes Leads to Islet Survival and Function
(Hindawi Publishing Corporation, 2011) Wang, Hongjun; Ferran, Christiane; Attanasio, Chiara; Calise, Fulvio; Otterbein, LeoIslet transplantation is the most valid approach to the treatment of type 1 diabetes. However, the function of transplanted islets is often compromised since a large number of β cells undergo apoptosis induced by stress and the immune rejection response elicited by the recipient after transplantation. Conventional treatment for islet transplantation is to administer immunosuppressive drugs to the recipient to suppress the immune rejection response mounted against transplanted islets. Induction of protective genes in the recipient (e.g., heme oxygenase-1 (HO-1), A20/tumor necrosis factor alpha inducible protein3 (tnfaip3), biliverdin reductase (BVR), Bcl2, and others) or administration of one or more of the products of HO-1 to the donor, the islets themselves, and/or the recipient offers an alternative or synergistic approach to improve islet graft survival and function. In this perspective, we summarize studies describing the protective effects of these genes on islet survival and function in rodent allogeneic and xenogeneic transplantation models and the prevention of onset of diabetes, with emphasis on HO-1, A20, and BVR. Such approaches are also appealing to islet autotransplantation in patients with chronic pancreatitis after total pancreatectomy, a procedure that currently only leads to 1/3 of transplanted patients being diabetes-free.
Publication Biliverdin Protects against Liver Ischemia Reperfusion Injury in Swine
(Public Library of Science, 2013) Andria, Barbara; Bracco, Adele; Attanasio, Chiara; Castaldo, Sigismondo; Cerrito, Maria Grazia; Cozzolino, Santolo; Di Napoli, Daniele; Giovannoni, Roberto; Mancini, Antonio; Musumeci, Antonino; Mezza, Ernesto; Nasti, Mario; Scuderi, Vincenzo; Staibano, Stefania; Lavitrano, Marialuisa; Otterbein, Leo; Calise, FulvioIschemia reperfusion injury (IRI) in organ transplantation remains a serious and unsolved problem. Organs that undergo significant damage during IRI, function less well immediately after reperfusion and tend to have more problems at later times when rejection can occur. Biliverdin has emerged as an agent that potently suppress IRI in rodent models. Since the use of biliverdin is being developed as a potential therapeutic modality for humans, we tested the efficacy for its effects on IRI of the liver in swine, an accepted and relevant pre-clinical animal model. Administration of biliverdin resulted in rapid appearance of bilirubin in the serum and significantly suppressed IRI-induced liver dysfunction as measured by multiple parameters including urea and ammonia clearance, neutrophil infiltration and tissue histopathology including hepatocyte cell death. Taken together, our findings, in a large animal model, provide strong support for the continued evaluation of biliverdin as a potential therapeutic in the clinical setting of transplantation of the liver and perhaps other organs.