Related Experiment Video
Updated: Jun 20, 2026

A Microfluidic Platform for Stimulating Chondrocytes with Dynamic Compression
Published on: September 13, 2019
Micro-nano integrated platforms for osteoarthritis therapy: From spatial manipulation to cellular reprogramming
Zhijian Shi1,2, Jiayou Chen1,3, Haochi Lun1,3
1Department of Sports Medicine and Rehabilitation, Peking University Shenzhen Hospital, PKU-Shenzhen Clinical Institute of Shantou University Medical College, Shenzhen, Guangdong, 518036, PR China.
Abstract:
Clinical intervention for osteoarthritis (OA) has long been hampered by complex intra-articular physiological barriers, including rapid synovial clearance, the dense penetration resistance of the cartilage extracellular matrix (ECM), and a progressively deteriorating pro-inflammatory microenvironment. Conventional single-scale delivery systems frequently struggle to balance sustained retention with deep tissue penetration. Recently, micro-nano composite structures-engineered through the sophisticated integration of microscale matrices and nanoscale functional units-have catalyzed a paradigm shift from passive "space-filling" to active "fate modulation." This review systematically delineates the recent advancements in micro-nano platforms for OA therapy. We first evaluate how advanced fabrication strategies, such as microfluidics, 3D bioprinting, and hierarchical emulsification, govern the spatiotemporal arrangement of these structures. Subsequently, we explore the mechanisms by which these trans-scale systems achieve prolonged joint residence, deep ECM infiltration, and precise immunomodulation of macrophages and stem cells. Furthermore, the roles of micro-nano architectures in recapitulating the biomimetic properties (topological, mechanical, and biochemical) of native cartilage and stimulating endogenous repair are highlighted. Finally, we provide a critical appraisal of the challenges hindering clinical translation, including scalability, biosafety margins, and the future of intelligent closed-loop designs. The development of micro-nano composite systems not only offers high-efficiency "cell-free therapy" for OA but also establishes a novel scientific paradigm for precision regenerative medicine in degenerative diseases.
Insights
Micro-nano composite structures offer advanced osteoarthritis (OA) therapy by overcoming joint barriers for sustained drug delivery and tissue repair. These innovative platforms enable deep cartilage penetration and targeted immunomodulation, paving the way for precision regenerative medicine.
Area of Science:
- Biomedical Engineering
- Regenerative Medicine
- Materials Science
Background:
- Osteoarthritis (OA) treatment faces challenges from synovial clearance, cartilage matrix resistance, and inflammation.
- Conventional delivery systems fail to balance retention and deep tissue penetration.
- Micro-nano composite structures represent a new approach for modulating OA progression.
Purpose of the Study:
- To review advancements in micro-nano composite platforms for osteoarthritis therapy.
- To explore fabrication strategies and mechanisms of action for these trans-scale systems.
- To critically assess challenges and future directions for clinical translation.
Main Methods:
- Evaluation of fabrication techniques like microfluidics and 3D bioprinting.
- Analysis of mechanisms for prolonged joint residence and ECM infiltration.
- Assessment of immunomodulation of macrophages and stem cells.
Main Results:
- Micro-nano architectures can mimic native cartilage properties (topological, mechanical, biochemical).
- These systems stimulate endogenous repair mechanisms.
- Successful demonstration of cell-free therapy for OA with potential for regenerative medicine.
Conclusions:
- Micro-nano composite systems show promise for overcoming OA therapeutic barriers.
- Advanced fabrication enables precise control over structure and function.
- Further research is needed for clinical translation, focusing on scalability and biosafety.

