Dysfunction in IGF2R Pathway and Associated Perturbations in Autophagy and WNT Processes in Beckwith–Wiedemann Syndrome Cell Lines

Author:

Pileggi Silvana1ORCID,Colombo Elisa A.1ORCID,Ancona Silvia2ORCID,Quadri Roberto3,Bernardelli Clara2ORCID,Colapietro Patrizia4,Taiana Michela5,Fontana Laura16ORCID,Miozzo Monica16,Lesma Elena2ORCID,Sirchia Silvia M.1ORCID

Affiliation:

1. Medical Genetics, Department of Health Sciences, Università degli Studi di Milano, 20142 Milan, Italy

2. Pharmacology, Department of Health Sciences, Università degli Studi di Milano, 20142 Milan, Italy

3. Department of Biosciences, Università degli Studi di Milano, 20133 Milan, Italy

4. Medical Genetics, Department of Pathophysiology and Transplantation, Università degli Studi di Milano, 20122 Milan, Italy

5. Dino Ferrari Centre, Neuroscience Section, Department of Pathophysiology and Transplantation, Università degli Studi di Milano, 20122 Milan, Italy

6. Unit of Medical Genetics, ASST Santi Paolo e Carlo, 20142 Milan, Italy

Abstract

Beckwith–Wiedemann Syndrome (BWS) is an imprinting disorder characterized by overgrowth, stemming from various genetic and epigenetic changes. This study delves into the role of IGF2 upregulation in BWS, focusing on insulin-like growth factor pathways, which are poorly known in this syndrome. We examined the IGF2R, the primary receptor of IGF2, WNT, and autophagy/lysosomal pathways in BWS patient-derived lymphoblastoid cell lines, showing different genetic and epigenetic defects. The findings reveal a decreased expression and mislocalization of IGF2R protein, suggesting receptor dysfunction. Additionally, our results point to a dysregulation in the AKT/GSK-3/mTOR pathway, along with imbalances in autophagy and the WNT pathway. In conclusion, BWS cells, regardless of the genetic/epigenetic profiles, are characterized by alteration of the IGF2R pathway that is associated with the perturbation of the autophagy and lysosome processes. These alterations seem to be a key point of the molecular pathogenesis of BWS and potentially contribute to BWS’s characteristic overgrowth and cancer susceptibility. Our study also uncovers alterations in the WNT pathway across all BWS cell lines, consistent with its role in growth regulation and cancer development.

Funder

Università degli Studi di Milano

Publisher

MDPI AG

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