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Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice

Mutations in Lmna usually cause a series of human disorders, such as premature aging syndrome (progeria) involving the skeletal system. Gangliosides are known to be involved in cell surface differentiation and proliferation of stem cells. However, the role of gangliosides in Lmna dysfunctional mesen...

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Autores principales: Kwak, Dong Hoon, Park, Ji Hye, Choi, Eul Sig, Park, Seong Hyun, Lee, Seo-Yeon, Lee, Seoul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9792213/
https://www.ncbi.nlm.nih.gov/pubmed/36375476
http://dx.doi.org/10.18632/aging.204378
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author Kwak, Dong Hoon
Park, Ji Hye
Choi, Eul Sig
Park, Seong Hyun
Lee, Seo-Yeon
Lee, Seoul
author_facet Kwak, Dong Hoon
Park, Ji Hye
Choi, Eul Sig
Park, Seong Hyun
Lee, Seo-Yeon
Lee, Seoul
author_sort Kwak, Dong Hoon
collection PubMed
description Mutations in Lmna usually cause a series of human disorders, such as premature aging syndrome (progeria) involving the skeletal system. Gangliosides are known to be involved in cell surface differentiation and proliferation of stem cells. However, the role of gangliosides in Lmna dysfunctional mesenchymal stem cells (MSCs) is unclear. Therefore, Ganglioside's role in osteogenesis of Lmna dysfunctional MSCs analyzed. As a result of the analysis, it was confirmed that the expression of ganglioside GD1a was significantly reduced in MSCs derived from Lmna(Dhe/+) mice and in MSCs subjected to Lamin A/C knockdown using siRNA. Osteogenesis-related bone morphogenetic protein-2 and Osteocalcin protein, and gene expression were significantly decreased due to Lmna dysfunction. A result of treating MSCs with Lmna dysfunction with ganglioside GD1a (3 μg/ml), significantly increased bone differentiation in ganglioside GD1a treatment to Lmna-mutated MSCs. In addition, the level of pERK1/2, related to bone differentiation mechanisms was significantly increased. Ganglioside GD1a was treated to Congenital progeria Lmna(Dhe/+) mice. As a result, femur bone volume in ganglioside GD1a-treated Lmna(Dhe/+) mice was more significantly increased than in the Lmna(Dhe/+) mice. Therefore, it was confirmed that the ganglioside GD1a plays an important role in enhancing osteogenic differentiation in MSC was a dysfunction of Lmna.
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spelling pubmed-97922132022-12-27 Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice Kwak, Dong Hoon Park, Ji Hye Choi, Eul Sig Park, Seong Hyun Lee, Seo-Yeon Lee, Seoul Aging (Albany NY) Research Paper Mutations in Lmna usually cause a series of human disorders, such as premature aging syndrome (progeria) involving the skeletal system. Gangliosides are known to be involved in cell surface differentiation and proliferation of stem cells. However, the role of gangliosides in Lmna dysfunctional mesenchymal stem cells (MSCs) is unclear. Therefore, Ganglioside's role in osteogenesis of Lmna dysfunctional MSCs analyzed. As a result of the analysis, it was confirmed that the expression of ganglioside GD1a was significantly reduced in MSCs derived from Lmna(Dhe/+) mice and in MSCs subjected to Lamin A/C knockdown using siRNA. Osteogenesis-related bone morphogenetic protein-2 and Osteocalcin protein, and gene expression were significantly decreased due to Lmna dysfunction. A result of treating MSCs with Lmna dysfunction with ganglioside GD1a (3 μg/ml), significantly increased bone differentiation in ganglioside GD1a treatment to Lmna-mutated MSCs. In addition, the level of pERK1/2, related to bone differentiation mechanisms was significantly increased. Ganglioside GD1a was treated to Congenital progeria Lmna(Dhe/+) mice. As a result, femur bone volume in ganglioside GD1a-treated Lmna(Dhe/+) mice was more significantly increased than in the Lmna(Dhe/+) mice. Therefore, it was confirmed that the ganglioside GD1a plays an important role in enhancing osteogenic differentiation in MSC was a dysfunction of Lmna. Impact Journals 2022-11-14 /pmc/articles/PMC9792213/ /pubmed/36375476 http://dx.doi.org/10.18632/aging.204378 Text en Copyright: © 2022 Kwak et al. https://creativecommons.org/licenses/by/3.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/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
Kwak, Dong Hoon
Park, Ji Hye
Choi, Eul Sig
Park, Seong Hyun
Lee, Seo-Yeon
Lee, Seoul
Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title_full Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title_fullStr Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title_full_unstemmed Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title_short Ganglioside GD1a enhances osteogenesis by activating ERK1/2 in mesenchymal stem cells of Lmna mutant mice
title_sort ganglioside gd1a enhances osteogenesis by activating erk1/2 in mesenchymal stem cells of lmna mutant mice
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9792213/
https://www.ncbi.nlm.nih.gov/pubmed/36375476
http://dx.doi.org/10.18632/aging.204378
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