Cargando…

Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice

AIMS: The intraportal pancreatic islet transplantation (IPIT) model of diabetic rats is an insulin mediated model of hepatocarcinogenesis characterized by the induction of clear cell foci (CCF) of altered hepatocytes, which are pre-neoplastic lesions excessively storing glycogen (glycogenosis) and e...

Descripción completa

Detalles Bibliográficos
Autores principales: Ribback, Silvia, Sonke, Jenny, Lohr, Andrea, Frohme, Josephine, Peters, Kristin, Holm, Johannes, Peters, Michele, Cigliano, Antonio, Calvisi, Diego F., Dombrowski, Frank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5732809/
https://www.ncbi.nlm.nih.gov/pubmed/29262643
http://dx.doi.org/10.18632/oncotarget.22234
_version_ 1783286785732771840
author Ribback, Silvia
Sonke, Jenny
Lohr, Andrea
Frohme, Josephine
Peters, Kristin
Holm, Johannes
Peters, Michele
Cigliano, Antonio
Calvisi, Diego F.
Dombrowski, Frank
author_facet Ribback, Silvia
Sonke, Jenny
Lohr, Andrea
Frohme, Josephine
Peters, Kristin
Holm, Johannes
Peters, Michele
Cigliano, Antonio
Calvisi, Diego F.
Dombrowski, Frank
author_sort Ribback, Silvia
collection PubMed
description AIMS: The intraportal pancreatic islet transplantation (IPIT) model of diabetic rats is an insulin mediated model of hepatocarcinogenesis characterized by the induction of clear cell foci (CCF) of altered hepatocytes, which are pre-neoplastic lesions excessively storing glycogen (glycogenosis) and exhibiting activation of the AKT/mTOR protooncogenic pathway. In this study, we transferred the IPIT model to the mouse and combined it with the knockout of the transcription factor carbohydrate responsive element binding protein (chREBP). METHODS: C57BL/6J Wild-type (WT) and chREBP-knockout (chREBP-KO) mice (n = 297) were matched to 16 groups (WT/ chREBP-KO, experimental/control, streptozotocine-induced diabetic/not diabetic, one/four weeks). Experimental groups received the intraportal transplantation of 70 pancreatic islets. Liver and pancreatic tissue was examined using histology, morphometry, enzyme- and immunohistochemistry and electron microscopy. RESULTS: CCF emerged in the liver acini downstream of the transplanted islets. In comparison to WT lesions, CCF of chREBP-KO mice displayed more glycogen accumulation, reduced activity of the gluconeogenic enzyme glucose-6-phosphatase, decreased glycolysis, lipogenesis and reduced levels of the AKT/mTOR cascade members. Proliferative activity of CCF was ∼two folds higher in WT mice than in chREBP-KO mice. CONCLUSIONS: The IPIT model is applicable to mice, as murine CCF resemble preneoplastic liver lesions from this hepatocarcinogenesis model in the rat in terms of morphological, metabolic and molecular alterations and proliferative activity, which is diminished after chREBP knockout. chREBP appears to be an essential component of AKT/mTOR mediated cell proliferation and the metabolic switch from a glycogenotic to lipogenic phenotype in precursor lesions of hepatocarcinogenesis.
format Online
Article
Text
id pubmed-5732809
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Impact Journals LLC
record_format MEDLINE/PubMed
spelling pubmed-57328092017-12-19 Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice Ribback, Silvia Sonke, Jenny Lohr, Andrea Frohme, Josephine Peters, Kristin Holm, Johannes Peters, Michele Cigliano, Antonio Calvisi, Diego F. Dombrowski, Frank Oncotarget Research Paper AIMS: The intraportal pancreatic islet transplantation (IPIT) model of diabetic rats is an insulin mediated model of hepatocarcinogenesis characterized by the induction of clear cell foci (CCF) of altered hepatocytes, which are pre-neoplastic lesions excessively storing glycogen (glycogenosis) and exhibiting activation of the AKT/mTOR protooncogenic pathway. In this study, we transferred the IPIT model to the mouse and combined it with the knockout of the transcription factor carbohydrate responsive element binding protein (chREBP). METHODS: C57BL/6J Wild-type (WT) and chREBP-knockout (chREBP-KO) mice (n = 297) were matched to 16 groups (WT/ chREBP-KO, experimental/control, streptozotocine-induced diabetic/not diabetic, one/four weeks). Experimental groups received the intraportal transplantation of 70 pancreatic islets. Liver and pancreatic tissue was examined using histology, morphometry, enzyme- and immunohistochemistry and electron microscopy. RESULTS: CCF emerged in the liver acini downstream of the transplanted islets. In comparison to WT lesions, CCF of chREBP-KO mice displayed more glycogen accumulation, reduced activity of the gluconeogenic enzyme glucose-6-phosphatase, decreased glycolysis, lipogenesis and reduced levels of the AKT/mTOR cascade members. Proliferative activity of CCF was ∼two folds higher in WT mice than in chREBP-KO mice. CONCLUSIONS: The IPIT model is applicable to mice, as murine CCF resemble preneoplastic liver lesions from this hepatocarcinogenesis model in the rat in terms of morphological, metabolic and molecular alterations and proliferative activity, which is diminished after chREBP knockout. chREBP appears to be an essential component of AKT/mTOR mediated cell proliferation and the metabolic switch from a glycogenotic to lipogenic phenotype in precursor lesions of hepatocarcinogenesis. Impact Journals LLC 2017-11-01 /pmc/articles/PMC5732809/ /pubmed/29262643 http://dx.doi.org/10.18632/oncotarget.22234 Text en Copyright: © 2017 Ribback et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) 3.0 (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Ribback, Silvia
Sonke, Jenny
Lohr, Andrea
Frohme, Josephine
Peters, Kristin
Holm, Johannes
Peters, Michele
Cigliano, Antonio
Calvisi, Diego F.
Dombrowski, Frank
Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title_full Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title_fullStr Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title_full_unstemmed Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title_short Hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
title_sort hepatocellular glycogenotic foci after combined intraportal pancreatic islet transplantation and knockout of the carbohydrate responsive element binding protein in diabetic mice
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5732809/
https://www.ncbi.nlm.nih.gov/pubmed/29262643
http://dx.doi.org/10.18632/oncotarget.22234
work_keys_str_mv AT ribbacksilvia hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT sonkejenny hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT lohrandrea hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT frohmejosephine hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT peterskristin hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT holmjohannes hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT petersmichele hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT ciglianoantonio hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT calvisidiegof hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice
AT dombrowskifrank hepatocellularglycogenoticfociaftercombinedintraportalpancreaticislettransplantationandknockoutofthecarbohydrateresponsiveelementbindingproteinindiabeticmice