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ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis

Alström Syndrome (ALMS) is a rare genetic disorder (483 living cases), characterized by many clinical manifestations, including blindness, obesity, type 2 diabetes and cardiomyopathy. ALMS is caused by mutations in the ALMS1 gene, encoding for a large protein with implicated roles in ciliary functio...

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Autores principales: Zulato, Elisabetta, Favaretto, Francesca, Veronese, Caterina, Campanaro, Stefano, Marshall, Jan D., Romano, Sara, Cabrelle, Anna, Collin, Gayle B., Zavan, Barbara, Belloni, Anna S., Rampazzo, Enrica, Naggert, Jürgen K., Abatangelo, Giovanni, Sicolo, Nicola, Maffei, Pietro, Milan, Gabriella, Vettor, Roberto
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3082548/
https://www.ncbi.nlm.nih.gov/pubmed/21541333
http://dx.doi.org/10.1371/journal.pone.0019081
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author Zulato, Elisabetta
Favaretto, Francesca
Veronese, Caterina
Campanaro, Stefano
Marshall, Jan D.
Romano, Sara
Cabrelle, Anna
Collin, Gayle B.
Zavan, Barbara
Belloni, Anna S.
Rampazzo, Enrica
Naggert, Jürgen K.
Abatangelo, Giovanni
Sicolo, Nicola
Maffei, Pietro
Milan, Gabriella
Vettor, Roberto
author_facet Zulato, Elisabetta
Favaretto, Francesca
Veronese, Caterina
Campanaro, Stefano
Marshall, Jan D.
Romano, Sara
Cabrelle, Anna
Collin, Gayle B.
Zavan, Barbara
Belloni, Anna S.
Rampazzo, Enrica
Naggert, Jürgen K.
Abatangelo, Giovanni
Sicolo, Nicola
Maffei, Pietro
Milan, Gabriella
Vettor, Roberto
author_sort Zulato, Elisabetta
collection PubMed
description Alström Syndrome (ALMS) is a rare genetic disorder (483 living cases), characterized by many clinical manifestations, including blindness, obesity, type 2 diabetes and cardiomyopathy. ALMS is caused by mutations in the ALMS1 gene, encoding for a large protein with implicated roles in ciliary function, cellular quiescence and intracellular transport. Patients with ALMS have extensive fibrosis in nearly all tissues resulting in a progressive organ failure which is often the ultimate cause of death. To focus on the role of ALMS1 mutations in the generation and maintenance of this pathological fibrosis, we performed gene expression analysis, ultrastructural characterization and functional assays in 4 dermal fibroblast cultures from ALMS patients. Using a genome-wide gene expression analysis we found alterations in genes belonging to specific categories (cell cycle, extracellular matrix (ECM) and fibrosis, cellular architecture/motility and apoptosis). ALMS fibroblasts display cytoskeleton abnormalities and migration impairment, up-regulate the expression and production of collagens and despite the increase in the cell cycle length are more resistant to apoptosis. Therefore ALMS1-deficient fibroblasts showed a constitutively activated myofibroblast phenotype even if they do not derive from a fibrotic lesion. Our results support a genetic basis for the fibrosis observed in ALMS and show that both an excessive ECM production and a failure to eliminate myofibroblasts are key mechanisms. Furthermore, our findings suggest new roles for ALMS1 in both intra- and extra-cellular events which are essential not only for the normal cellular function but also for cell-cell and ECM-cell interactions.
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spelling pubmed-30825482011-05-03 ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis Zulato, Elisabetta Favaretto, Francesca Veronese, Caterina Campanaro, Stefano Marshall, Jan D. Romano, Sara Cabrelle, Anna Collin, Gayle B. Zavan, Barbara Belloni, Anna S. Rampazzo, Enrica Naggert, Jürgen K. Abatangelo, Giovanni Sicolo, Nicola Maffei, Pietro Milan, Gabriella Vettor, Roberto PLoS One Research Article Alström Syndrome (ALMS) is a rare genetic disorder (483 living cases), characterized by many clinical manifestations, including blindness, obesity, type 2 diabetes and cardiomyopathy. ALMS is caused by mutations in the ALMS1 gene, encoding for a large protein with implicated roles in ciliary function, cellular quiescence and intracellular transport. Patients with ALMS have extensive fibrosis in nearly all tissues resulting in a progressive organ failure which is often the ultimate cause of death. To focus on the role of ALMS1 mutations in the generation and maintenance of this pathological fibrosis, we performed gene expression analysis, ultrastructural characterization and functional assays in 4 dermal fibroblast cultures from ALMS patients. Using a genome-wide gene expression analysis we found alterations in genes belonging to specific categories (cell cycle, extracellular matrix (ECM) and fibrosis, cellular architecture/motility and apoptosis). ALMS fibroblasts display cytoskeleton abnormalities and migration impairment, up-regulate the expression and production of collagens and despite the increase in the cell cycle length are more resistant to apoptosis. Therefore ALMS1-deficient fibroblasts showed a constitutively activated myofibroblast phenotype even if they do not derive from a fibrotic lesion. Our results support a genetic basis for the fibrosis observed in ALMS and show that both an excessive ECM production and a failure to eliminate myofibroblasts are key mechanisms. Furthermore, our findings suggest new roles for ALMS1 in both intra- and extra-cellular events which are essential not only for the normal cellular function but also for cell-cell and ECM-cell interactions. Public Library of Science 2011-04-26 /pmc/articles/PMC3082548/ /pubmed/21541333 http://dx.doi.org/10.1371/journal.pone.0019081 Text en Zulato et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Zulato, Elisabetta
Favaretto, Francesca
Veronese, Caterina
Campanaro, Stefano
Marshall, Jan D.
Romano, Sara
Cabrelle, Anna
Collin, Gayle B.
Zavan, Barbara
Belloni, Anna S.
Rampazzo, Enrica
Naggert, Jürgen K.
Abatangelo, Giovanni
Sicolo, Nicola
Maffei, Pietro
Milan, Gabriella
Vettor, Roberto
ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title_full ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title_fullStr ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title_full_unstemmed ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title_short ALMS1-Deficient Fibroblasts Over-Express Extra-Cellular Matrix Components, Display Cell Cycle Delay and Are Resistant to Apoptosis
title_sort alms1-deficient fibroblasts over-express extra-cellular matrix components, display cell cycle delay and are resistant to apoptosis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3082548/
https://www.ncbi.nlm.nih.gov/pubmed/21541333
http://dx.doi.org/10.1371/journal.pone.0019081
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