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Investigating the role of ASCC1 in the causation of bone fragility

Bi-allelic variants in ASCC1 cause the ultrarare bone fragility disorder “spinal muscular atrophy with congenital bone fractures-2” (SMABF2). However, the mechanism by which ASCC1 dysfunction leads to this musculoskeletal condition and the nature of the associated bone defect are poorly understood....

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Autores principales: Voraberger, Barbara, Mayr, Johannes A., Fratzl-Zelman, Nadja, Blouin, Stéphane, Uday, Suma, Kopajtich, Robert, Koedam, Marijke, Hödlmayr, Helena, Wortmann, Saskia B., Csillag, Bernhard, Prokisch, Holger, van der Eerden, Bram C. J., El-Gazzar, Ahmed, Högler, Wolfgang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10348481/
https://www.ncbi.nlm.nih.gov/pubmed/37455927
http://dx.doi.org/10.3389/fendo.2023.1137573
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author Voraberger, Barbara
Mayr, Johannes A.
Fratzl-Zelman, Nadja
Blouin, Stéphane
Uday, Suma
Kopajtich, Robert
Koedam, Marijke
Hödlmayr, Helena
Wortmann, Saskia B.
Csillag, Bernhard
Prokisch, Holger
van der Eerden, Bram C. J.
El-Gazzar, Ahmed
Högler, Wolfgang
author_facet Voraberger, Barbara
Mayr, Johannes A.
Fratzl-Zelman, Nadja
Blouin, Stéphane
Uday, Suma
Kopajtich, Robert
Koedam, Marijke
Hödlmayr, Helena
Wortmann, Saskia B.
Csillag, Bernhard
Prokisch, Holger
van der Eerden, Bram C. J.
El-Gazzar, Ahmed
Högler, Wolfgang
author_sort Voraberger, Barbara
collection PubMed
description Bi-allelic variants in ASCC1 cause the ultrarare bone fragility disorder “spinal muscular atrophy with congenital bone fractures-2” (SMABF2). However, the mechanism by which ASCC1 dysfunction leads to this musculoskeletal condition and the nature of the associated bone defect are poorly understood. By exome sequencing, we identified a novel homozygous deletion in ASCC1 in a female infant. She was born with severe muscular hypotonia, inability to breathe and swallow, and virtual absence of spontaneous movements; showed progressive brain atrophy, gracile long bones, very slender ribs, and a femur fracture; and died from respiratory failure aged 3 months. A transiliac bone sample taken postmortem revealed a distinct microstructural bone phenotype with low trabecular bone volume, low bone remodeling, disordered collagen organization, and an abnormally high bone marrow adiposity. Proteomics, RNA sequencing, and qPCR in patient-derived skin fibroblasts confirmed that ASCC1 was hardly expressed on protein and RNA levels compared with healthy controls. Furthermore, we demonstrate that mutated ASCC1 is associated with a downregulation of RUNX2, the master regulator of osteoblastogenesis, and SERPINF1, which is involved in osteoblast and adipocyte differentiation. It also exerts an inhibitory effect on TGF-β/SMAD signaling, which is important for bone development. Additionally, knockdown of ASCC1 in human mesenchymal stromal cells (hMSCs) suppressed their differentiation capacity into osteoblasts while increasing their differentiation into adipocytes. This resulted in reduced mineralization and elevated formation of lipid droplets. These findings shed light onto the pathophysiologic mechanisms underlying SMABF2 and assign a new biological role to ASCC1 acting as an important pro-osteoblastogenic and anti-adipogenic regulator.
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spelling pubmed-103484812023-07-15 Investigating the role of ASCC1 in the causation of bone fragility Voraberger, Barbara Mayr, Johannes A. Fratzl-Zelman, Nadja Blouin, Stéphane Uday, Suma Kopajtich, Robert Koedam, Marijke Hödlmayr, Helena Wortmann, Saskia B. Csillag, Bernhard Prokisch, Holger van der Eerden, Bram C. J. El-Gazzar, Ahmed Högler, Wolfgang Front Endocrinol (Lausanne) Endocrinology Bi-allelic variants in ASCC1 cause the ultrarare bone fragility disorder “spinal muscular atrophy with congenital bone fractures-2” (SMABF2). However, the mechanism by which ASCC1 dysfunction leads to this musculoskeletal condition and the nature of the associated bone defect are poorly understood. By exome sequencing, we identified a novel homozygous deletion in ASCC1 in a female infant. She was born with severe muscular hypotonia, inability to breathe and swallow, and virtual absence of spontaneous movements; showed progressive brain atrophy, gracile long bones, very slender ribs, and a femur fracture; and died from respiratory failure aged 3 months. A transiliac bone sample taken postmortem revealed a distinct microstructural bone phenotype with low trabecular bone volume, low bone remodeling, disordered collagen organization, and an abnormally high bone marrow adiposity. Proteomics, RNA sequencing, and qPCR in patient-derived skin fibroblasts confirmed that ASCC1 was hardly expressed on protein and RNA levels compared with healthy controls. Furthermore, we demonstrate that mutated ASCC1 is associated with a downregulation of RUNX2, the master regulator of osteoblastogenesis, and SERPINF1, which is involved in osteoblast and adipocyte differentiation. It also exerts an inhibitory effect on TGF-β/SMAD signaling, which is important for bone development. Additionally, knockdown of ASCC1 in human mesenchymal stromal cells (hMSCs) suppressed their differentiation capacity into osteoblasts while increasing their differentiation into adipocytes. This resulted in reduced mineralization and elevated formation of lipid droplets. These findings shed light onto the pathophysiologic mechanisms underlying SMABF2 and assign a new biological role to ASCC1 acting as an important pro-osteoblastogenic and anti-adipogenic regulator. Frontiers Media S.A. 2023-06-30 /pmc/articles/PMC10348481/ /pubmed/37455927 http://dx.doi.org/10.3389/fendo.2023.1137573 Text en Copyright © 2023 Voraberger, Mayr, Fratzl-Zelman, Blouin, Uday, Kopajtich, Koedam, Hödlmayr, Wortmann, Csillag, Prokisch, van der Eerden, El-Gazzar and Högler https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Endocrinology
Voraberger, Barbara
Mayr, Johannes A.
Fratzl-Zelman, Nadja
Blouin, Stéphane
Uday, Suma
Kopajtich, Robert
Koedam, Marijke
Hödlmayr, Helena
Wortmann, Saskia B.
Csillag, Bernhard
Prokisch, Holger
van der Eerden, Bram C. J.
El-Gazzar, Ahmed
Högler, Wolfgang
Investigating the role of ASCC1 in the causation of bone fragility
title Investigating the role of ASCC1 in the causation of bone fragility
title_full Investigating the role of ASCC1 in the causation of bone fragility
title_fullStr Investigating the role of ASCC1 in the causation of bone fragility
title_full_unstemmed Investigating the role of ASCC1 in the causation of bone fragility
title_short Investigating the role of ASCC1 in the causation of bone fragility
title_sort investigating the role of ascc1 in the causation of bone fragility
topic Endocrinology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10348481/
https://www.ncbi.nlm.nih.gov/pubmed/37455927
http://dx.doi.org/10.3389/fendo.2023.1137573
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