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Isolation, Culture, and Differentiation of Bone Marrow Stromal Cells and Osteoclast Progenitors from Mice
Published on: January 6, 2018
Radiation-Induced Osteocyte Senescence Alters Bone Marrow Mesenchymal Stem Cell Differentiation Potential via
Linshan Xu1, Yuyang Wang1, Jianping Wang1
1Department of Radiological Hygiene, Institute of Radiation Medicine, Fudan University, 2094 Xietu Road, Shanghai 200032, China.
Abstract:
Cellular senescence and its senescence-associated secretory phenotype (SASP) are widely regarded as promising therapeutic targets for aging-related diseases, such as osteoporosis. However, the expression pattern of cellular senescence and multiple SASP secretion remains unclear, thus leaving a large gap in the knowledge for a desirable intervention targeting cellular senescence. Therefore, there is a critical need to understand the molecular mechanism of SASP secretion in the bone microenvironment that can ameliorate aging-related degenerative pathologies including osteoporosis. In this study, osteocyte-like cells (MLO-Y4) were induced to cellular senescence by 2 Gy γ-rays; then, senescence phenotype changes and adverse effects of SASP on bone marrow mesenchymal stem cell (BMSC) differentiation potential were investigated. The results revealed that 2 Gy irradiation could hinder cell viability, shorten cell dendrites, and induce cellular senescence, as evidenced by the higher expression of senescence markers p16 and p21 and the elevated formation of senescence-associated heterochromatin foci (SAHF), which was accompanied by the enhanced secretion of SASP markers such as IL-1α, IL-6, MMP-3, IGFBP-6, resistin, and adiponectin. When 0.8 μM JAK1 inhibitors were added to block SASP secretion, the higher expression of SASP was blunted, but the inhibition in osteogenic and adipogenic differentiation potential of BMSCs co-cultured with irradiated MLO-Y4 cell conditioned medium (CM- 2 Gy) was alleviated. These results suggest that senescent osteocytes can perturb BMSCs' differential potential via the paracrine signaling of SASP, which was also demonstrated by in vivo experiments. In conclusion, we identified the SASP factor partially responsible for the degenerative differentiation of BMSCs, which allowed us to hypothesize that senescent osteocytes and their SASPs may contribute to radiation-induced bone loss.
Insights
Cellular senescence in osteocytes triggers a harmful secretory phenotype (SASP) that impairs bone marrow stem cell differentiation, potentially causing radiation-induced bone loss and offering therapeutic targets for aging diseases.
Area of Science:
- Cellular Biology
- Gerontology
- Bone Biology
Background:
- Cellular senescence and its senescence-associated secretory phenotype (SASP) are implicated in aging-related diseases like osteoporosis.
- The precise mechanisms of SASP secretion in the bone microenvironment and its impact on bone health remain incompletely understood.
- Targeting cellular senescence and SASP offers a promising therapeutic avenue for age-related bone pathologies.
Purpose of the Study:
- To investigate the molecular mechanisms of SASP secretion in senescent osteocytes within the bone microenvironment.
- To elucidate the adverse effects of SASP on bone marrow mesenchymal stem cell (BMSC) differentiation potential.
- To identify specific SASP factors contributing to age-related bone degeneration, such as osteoporosis.
Main Methods:
- Osteocyte-like MLO-Y4 cells were induced into cellular senescence using 2 Gy gamma irradiation.
- Senescence phenotype, including p16/p21 expression and senescence-associated heterochromatin foci (SAHF), was assessed.
- SASP secretion profiles (IL-1α, IL-6, MMP-3, etc.) were analyzed, and JAK1 inhibitors were used to block SASP.
Main Results:
- Irradiation induced cellular senescence in MLO-Y4 cells, characterized by reduced viability, shortened dendrites, and increased p16/p21 expression.
- Senescent osteocytes exhibited enhanced secretion of multiple SASP factors, including IL-1α, IL-6, and adiponectin.
- Blocking SASP partially alleviated the negative impact on BMSC osteogenic and adipogenic differentiation potential.
Conclusions:
- Senescent osteocytes secrete SASP factors that negatively regulate the differentiation capacity of bone marrow mesenchymal stem cells.
- Specific SASP factors identified in this study contribute to the degenerative differentiation of BMSCs.
- Senescent osteocytes and their SASP may play a significant role in radiation-induced bone loss, highlighting them as therapeutic targets.
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