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Published on: September 29, 2018
Progress in antisenescence biomaterials for improved osteoarthritis therapy
Yang-Shuo Ge1, Jia-Ying Ding1, Jun Shen2
1The Second Rehabilitation Hospital of Shanghai, Shanghai, China; Institute of Rehabilitation Medicine, Shanghai Academy of Traditional Chinese Medicine, Shanghai, China.
Abstract:
Osteoarthritis (OA) is a degenerative joint disease closely associated with aging for which current treatments are limited primarily to symptomatic relief and fail to reverse pathological progression. A growing body of evidence indicates that the accumulation of senescent cells is a central driver of OA pathogenesis. This review systematically summarizes the latest advancements in antisenescence biomaterials for OA therapy, emphasizing their potential to overcome the limitations of conventional approaches by improving drug targeting, prolonging drug release kinetics, and increasing bioavailability. We categorize these biomaterials on the basis of their antisenescence mechanism and delivery platform, including polymeric nanoparticles (NPs), nanozymes, lipid nanoparticles (LNPs), extracellular vesicles (EVs), hydrogels, and composite hydrogels. These systems have demonstrated efficacy in selectively eliminating senescent cells through various molecular mechanisms such as modulating mitochondrial dysfunction, inflammatory signaling, DNA damage, mechanical overload and autophagy. Furthermore, this review proposes innovative strategies that integrate cellular reprogramming, organelle-targeted therapy, the artificial intelligence (AI)-guided design of antisenescence materials, and stem cell/organoid technologies to address challenges such as barriers to drug delivery and the heterogeneity of the aging microenvironment. Although these biomaterials still require further validation regarding safety, scalability, and regulatory approval for their clinical translation, antisenescence biomaterials represent multidimensional and sustainable therapeutic options for OA and hold promise for reshaping the therapeutic landscape of degenerative joint diseases by targeting the root causes of tissue degeneration. STATEMENT OF SIGNIFICANCE: Osteoarthritis (OA) is an age-related joint disease for which current therapies provide only symptom relief without halting progression. Increasing evidence shows that senescent cells drive OA development. This review summarizes recent advances in antisenescence biomaterials, including nanoparticles, nanozymes, lipid carriers, extracellular vesicles, and hydrogels. These systems improve drug targeting, prolong release, and enhance bioavailability while selectively eliminating senescent cells through mechanisms such as regulating mitochondrial dysfunction, inflammation, and DNA damage. We also highlight innovative approaches integrating cellular reprogramming, organelle-targeted therapy, AI-guided design, and stem cell technologies. Although further validation is required, antisenescence biomaterials offer sustainable strategies that target OA at its root, reshaping future treatment of degenerative joint diseases.
Insights
New antisenescence biomaterials offer a promising approach to treating osteoarthritis (OA) by targeting senescent cells. These advanced materials improve drug delivery and bioavailability, potentially halting OA progression.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Gerontology
Background:
- Osteoarthritis (OA) is a degenerative joint disease linked to aging, with current treatments offering only symptomatic relief.
- Accumulation of senescent cells is a key driver of OA pathogenesis, necessitating novel therapeutic strategies.
- Existing OA therapies fail to address the underlying pathological progression, highlighting the need for disease-modifying treatments.
Purpose of the Study:
- To systematically review recent advancements in antisenescence biomaterials for OA therapy.
- To emphasize the potential of these biomaterials in improving drug targeting, release kinetics, and bioavailability.
- To explore innovative strategies for overcoming challenges in OA treatment and clinical translation.
Main Methods:
- Categorization of biomaterials based on antisenescence mechanisms and delivery platforms (e.g., nanoparticles, hydrogels).
- Summary of evidence on selective elimination of senescent cells via modulation of cellular pathways (mitochondria, inflammation, DNA damage, autophagy).
- Review of emerging strategies including cellular reprogramming, AI-guided design, and stem cell technologies.
Main Results:
- Various biomaterials (polymeric NPs, nanozymes, LNPs, EVs, hydrogels) demonstrate efficacy in targeting senescent cells in OA.
- These systems enhance drug delivery parameters, improving therapeutic potential.
- Innovative approaches show promise in addressing drug delivery barriers and microenvironment heterogeneity.
Conclusions:
- Antisenescence biomaterials represent a multidimensional and sustainable therapeutic avenue for OA.
- These novel materials target the root causes of tissue degeneration, offering a potential paradigm shift in treating OA.
- Further validation is required for clinical translation, but these biomaterials hold promise for reshaping degenerative joint disease therapy.

