Silencing Porcine CMAH and GGTA1 Genes Significantly Reduces Xenogeneic Consumption of Human Platelets by Porcine Livers
TRANSPLANTATION
Authors: Butler, James Russell; Paris, Leela L.; Blankenship, Ross L.; Sidner, Richard A.; Martens, Gregory R.; Ladowski, Joseph M.; Li, Ping; Estrada, Jose L.; Tector, Matthew; Tector, A. Joseph
Abstract
Background. A profound thrombocytopenia limits hepatic xenotransplantation in the pig-to-primate model. Porcine livers also have shown the ability to phagocytose human platelets in the absence of immune-mediated injury. Recently, inactivation of the porcine ASGR1 gene has been shown to decrease this phenomenon. Inactivating GGTA1 and CMAH genes has reduced the antibody-mediated barrier to xenotransplantation; herein, we describe the effect that these modifications have on xenogeneic consumption of human platelets in the absence of immune-mediated graft injury. Methods. Wild type (WT), ASGR1(-/-), GGTA1(-/-), and GGTA1(-/-) CMAH(-/-) knockout pigs were compared for their xenogeneic hepatic consumption of human platelets. An in vitro assay was established to measure the association of human platelets with liver sinusoidal endothelial cells (LSECs) by immunohistochemistry. Perfusion models were used to measure human platelet uptake in livers from WT, ASGR1(-/-), GGTA1(-/-), and GGTA1(-/-) CMAH(-/-) pigs. Results. GGTA1(-/-), CMAH(-/-) LSECs exhibited reduced levels of human platelet binding in vitro when compared with GGTA1(-/-) and WT LSECs. In a continuous perfusion model, GGTA1(-/-) CMAH(-/-) livers consumed fewer human platelets than GGTA1(-/-) and WT livers. GGTA1(-/-) CMAH(-/-) livers also consumed fewer human platelets than ASGR1(-/-) livers in a single-pass model. Conclusions. Silencing the porcine carbohydrate genes necessary to avoid antibody-mediated rejection in a pig-to-human model also reduces the xenogeneic consumption of human platelets by the porcine liver. The combination of these genetic modifications may be an effective strategy to limit the thrombocytopenia associated with pig-to-human hepatic xenotransplantation.
New mouse models for metabolic bone diseases generated by genome-wide ENU mutagenesis
MAMMALIAN GENOME
Authors: Sabrautzki, Sibylle; Rubio-Aliaga, Isabel; Hans, Wolfgang; Fuchs, Helmut; Rathkolb, Birgit; Calzada-Wack, Julia; Cohrs, Christian M.; Klaften, Matthias; Seedorf, Hartwig; Eck, Sebastian; Benet-Pages, Ana; Favor, Jack; Esposito, Irene; Strom, Tim M.; Wolf, Eckhard; Lorenz-Depiereux, Bettina; de Angelis, Martin Hrabe
Abstract
Metabolic bone disorders arise as primary diseases or may be secondary due to a multitude of organ malfunctions. Animal models are required to understand the molecular mechanisms responsible for the imbalances of bone metabolism in disturbed bone mineralization diseases. Here we present the isolation of mutant mouse models for metabolic bone diseases by phenotyping blood parameters that target bone turnover within the large-scale genome-wide Munich ENU Mutagenesis Project. A screening panel of three clinical parameters, also commonly used as biochemical markers in patients with metabolic bone diseases, was chosen. Total alkaline phosphatase activity and total calcium and inorganic phosphate levels in plasma samples of F1 offspring produced from ENU-mutagenized C3HeB/FeJ male mice were measured. Screening of 9,540 mice led to the identification of 257 phenodeviants of which 190 were tested by genetic confirmation crosses. Seventy-one new dominant mutant lines showing alterations of at least one of the biochemical parameters of interest were confirmed. Fifteen mutations among three genes (Phex, Casr, and Alpl) have been identified by positional-candidate gene approaches and one mutation of the Asgr1 gene, which was identified by next-generation sequencing. All new mutant mouse lines are offered as a resource for the scientific community.