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Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin

The superconducting magnet generates a field and field gradient product that can levitate diamagnetic materials. In this study a specially designed superconducting magnet with a large gradient high magnetic field (LG-HMF), which can provide three apparent gravity levels (μ-g, 1-g, and 2-g), was used...

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Autores principales: Qian, Ai-Rong, Gao, Xiang, Zhang, Wei, Li, Jing-Bao, Wang, Yang, Di, Sheng-Meng, Hu, Li-Fang, Shang, Peng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3558520/
https://www.ncbi.nlm.nih.gov/pubmed/23382804
http://dx.doi.org/10.1371/journal.pone.0051036
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author Qian, Ai-Rong
Gao, Xiang
Zhang, Wei
Li, Jing-Bao
Wang, Yang
Di, Sheng-Meng
Hu, Li-Fang
Shang, Peng
author_facet Qian, Ai-Rong
Gao, Xiang
Zhang, Wei
Li, Jing-Bao
Wang, Yang
Di, Sheng-Meng
Hu, Li-Fang
Shang, Peng
author_sort Qian, Ai-Rong
collection PubMed
description The superconducting magnet generates a field and field gradient product that can levitate diamagnetic materials. In this study a specially designed superconducting magnet with a large gradient high magnetic field (LG-HMF), which can provide three apparent gravity levels (μ-g, 1-g, and 2-g), was used to simulate a space-like gravity environment. The effects of LG-HMF on the ultrastructure and function of osteoblast-like cells (MG-63 and MC3T3-E1) and the underlying mechanism were investigated by transmission electromicroscopy (TEM), MTT, and cell western (ICW) assays. Under LG-HMF significant morphologic changes in osteoblast-like cells occurred, including expansion of endoplasmic reticulum and mitochondria, an increased number of lysosomes, distorted microvilli, and aggregates of actin filaments. Compared to controls, cell viability and alkaline phosphatase (ALP) secretion were significantly increased, and collagen I (col I), fibronectin (FN), vinculin, integrin α3, αv, and β1 expression were changed under LG-HMF conditions. In conclusion, LG-HMF affects osteoblast ultrastructure, cell viability, and ALP secretion, and the changes caused by LG-HMF may be related to disrupting col I or FN/αβ1 integrin.
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spelling pubmed-35585202013-02-04 Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin Qian, Ai-Rong Gao, Xiang Zhang, Wei Li, Jing-Bao Wang, Yang Di, Sheng-Meng Hu, Li-Fang Shang, Peng PLoS One Research Article The superconducting magnet generates a field and field gradient product that can levitate diamagnetic materials. In this study a specially designed superconducting magnet with a large gradient high magnetic field (LG-HMF), which can provide three apparent gravity levels (μ-g, 1-g, and 2-g), was used to simulate a space-like gravity environment. The effects of LG-HMF on the ultrastructure and function of osteoblast-like cells (MG-63 and MC3T3-E1) and the underlying mechanism were investigated by transmission electromicroscopy (TEM), MTT, and cell western (ICW) assays. Under LG-HMF significant morphologic changes in osteoblast-like cells occurred, including expansion of endoplasmic reticulum and mitochondria, an increased number of lysosomes, distorted microvilli, and aggregates of actin filaments. Compared to controls, cell viability and alkaline phosphatase (ALP) secretion were significantly increased, and collagen I (col I), fibronectin (FN), vinculin, integrin α3, αv, and β1 expression were changed under LG-HMF conditions. In conclusion, LG-HMF affects osteoblast ultrastructure, cell viability, and ALP secretion, and the changes caused by LG-HMF may be related to disrupting col I or FN/αβ1 integrin. Public Library of Science 2013-01-29 /pmc/articles/PMC3558520/ /pubmed/23382804 http://dx.doi.org/10.1371/journal.pone.0051036 Text en © 2013 Qian 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
Qian, Ai-Rong
Gao, Xiang
Zhang, Wei
Li, Jing-Bao
Wang, Yang
Di, Sheng-Meng
Hu, Li-Fang
Shang, Peng
Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title_full Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title_fullStr Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title_full_unstemmed Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title_short Large Gradient High Magnetic Fields Affect Osteoblast Ultrastructure and Function by Disrupting Collagen I or Fibronectin/αβ1 Integrin
title_sort large gradient high magnetic fields affect osteoblast ultrastructure and function by disrupting collagen i or fibronectin/αβ1 integrin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3558520/
https://www.ncbi.nlm.nih.gov/pubmed/23382804
http://dx.doi.org/10.1371/journal.pone.0051036
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