Literature DB >> 25581684

Epigenetic changes during mechanically induced osteogenic lineage commitment.

Julia C Chen, Mardonn Chua, Raymond B Bellon, Christopher R Jacobs.   

Abstract

Osteogenic lineage commitment is often evaluated by analyzing gene expression. However, many genes are transiently expressed during differentiation. The availability of genes for expression is influenced by epigenetic state, which affects the heterochromatin structure. DNA methylation, a form of epigenetic regulation, is stable and heritable. Therefore, analyzing methylation status may be less temporally dependent and more informative for evaluating lineage commitment. Here we analyzed the effect of mechanical stimulation on osteogenic differentiation by applying fluid shear stress for 24 hr to osteocytes and then applying the osteocyte-conditioned medium (CM) to progenitor cells. We analyzed gene expression and changes in DNA methylation after 24 hr of exposure to the CM using quantitative real-time polymerase chain reaction and bisulfite sequencing. With fluid shear stress stimulation, methylation decreased for both adipogenic and osteogenic markers, which typically increases availability of genes for expression. After only 24 hr of exposure to CM, we also observed increases in expression of later osteogenic markers that are typically observed to increase after seven days or more with biochemical induction. However, we observed a decrease or no change in early osteogenic markers and decreases in adipogenic gene expression. Treatment of a demethylating agent produced an increase in all genes. The results indicate that fluid shear stress stimulation rapidly promotes the availability of genes for expression, but also specifically increases gene expression of later osteogenic markers.

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Year:  2015        PMID: 25581684      PMCID: PMC4321109          DOI: 10.1115/1.4029551

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  36 in total

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5.  Effects of short-term recovery periods on fluid-induced signaling in osteoblastic cells.

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Journal:  J Biomech       Date:  2005-09       Impact factor: 2.712

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7.  Promoter DNA methylation patterns of differentiated cells are largely programmed at the progenitor stage.

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8.  Genome-scale DNA methylation maps of pluripotent and differentiated cells.

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9.  Undifferentiated human mesenchymal stem cells (hMSCs) are highly sensitive to mechanical strain: transcriptionally controlled early osteo-chondrogenic response in vitro.

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Review 3.  DNA methylation and demethylation link the properties of mesenchymal stem cells: Regeneration and immunomodulation.

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5.  Feasibility, potency, and safety of growing human mesenchymal stem cells in space for clinical application.

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6.  Chromium Oxide Nanoparticle Impaired Osteogenesis and Cellular Response to Mechanical Stimulus.

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7.  Biocompatibility of Polypyrrole with Human Primary Osteoblasts and the Effect of Dopants.

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Review 8.  Epigenome alterations in aortic valve stenosis and its related left ventricular hypertrophy.

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9.  Human osteoblasts obtained from distinct periarticular sites demonstrate differences in biological function in vitro.

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  9 in total

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