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Epigenetics as a New Frontier in Orthopedic Regenerative Medicine and Oncology
Andre J van Wijnen1, Jennifer J Westendorf1
1Department of Orthopedic Surgery, Mayo Clinic, 200 First Street SW, Rochester, Minnesota.
Abstract:
Skeletal regenerative medicine aims to repair or regenerate skeletal tissues using pharmacotherapies, cell-based treatments, and/or surgical interventions. The field is guided by biological principles active during development, wound healing, aging, and carcinogenesis. Skeletal development and tissue maintenance in adults represent highly intricate biological processes that require continuous adjustments in the expression of cell type-specific genes that generate, remodel, and repair the skeletal extracellular matrix. Errors in these processes can facilitate musculoskeletal disease including cancers or injury. The fundamental molecular mechanisms by which cell type-specific patterns in gene expression are established and retained during successive mitotic divisions require epigenetic control, which we review here. We focus on epigenetic regulatory proteins that control the mammalian epigenome at the level of chromatin with emphasis on proteins that are amenable to drug intervention to mitigate skeletal tissue degeneration (e.g., osteoarthritis and osteoporosis). We highlight recent findings on a number of druggable epigenetic regulators, including DNA methyltransferases (e.g., DNMT1, DNMT3A, and DNMT3B) and hydroxylases (e.g., TET1, TET2, and TET3), histone methyltransferases (e.g., EZH1, EZH2, and DOT1L) as well as histone deacetylases (e.g., HDAC3, HDAC4, and HDAC7) and histone acetyl readers (e.g., BRD4) in relation to the development of bone or cartilage regenerative drug therapies. We also review how histone mutations lead to epigenomic catastrophe and cause musculoskeletal tumors. The combined body of molecular and genetic studies focusing on epigenetic regulators indicates that these proteins are critical for normal skeletogenesis and viable candidate drug targets for short-term local pharmacological strategies to mitigate musculoskeletal tissue degeneration. © 2019 Orthopaedic Research Society. Published by Wiley Periodicals, Inc. J Orthop Res 37:1465-1474, 2019.
Insights
Epigenetic regulators control gene expression crucial for skeletal development and repair. Targeting these epigenetic proteins offers potential for new drug therapies to treat skeletal degeneration like osteoarthritis and osteoporosis.
Area of Science:
- Skeletal regenerative medicine
- Epigenetics
- Molecular biology
Background:
- Skeletal regenerative medicine utilizes pharmacotherapies, cell-based treatments, and surgery, guided by developmental and healing principles.
- Skeletal tissue maintenance involves complex gene expression regulation of the extracellular matrix.
- Epigenetic control is fundamental to maintaining cell-specific gene expression patterns during cell division.
Purpose of the Study:
- To review epigenetic regulatory proteins controlling the mammalian epigenome at the chromatin level.
- To emphasize proteins amenable to drug intervention for mitigating skeletal tissue degeneration.
- To highlight recent findings on druggable epigenetic regulators for bone and cartilage regenerative therapies.
Main Methods:
- Review of molecular and genetic studies on epigenetic regulators.
- Focus on proteins controlling chromatin structure and gene expression.
- Identification of drug-amenable epigenetic targets.
Main Results:
- Epigenetic regulators like DNA methyltransferases, hydroxylases, histone methyltransferases, histone deacetylases, and histone acetyl readers are crucial for skeletogenesis.
- Mutations in histones can lead to epigenomic catastrophe and musculoskeletal tumors.
- Druggable epigenetic regulators show promise for regenerative drug therapies.
Conclusions:
- Epigenetic regulators are critical for normal skeletogenesis.
- These proteins are viable drug targets for localized pharmacological strategies to combat skeletal tissue degeneration.
- Targeting epigenetic mechanisms offers a promising avenue for osteoarthritis and osteoporosis treatment.
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