A synergistic strategy involving reverse-adaptation and engineered MSC exosomes against ferroptosis in osteoarthritis.

Wang, Jinwu; Lou, Chao; Shen, Zhihao; Yang, Jin; Jiang, Hongyi; Yu, Heng; Zhang, Yu; Li, Yangbo et al. · Biomaterials · 2026

basic_science · Level V

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Abstract

Osteoarthritis (OA) progression is driven by persistent oxidative stress and ferroptosis, which erode chondrocyte viability and extracellular matrix integrity. Although mesenchymal stem cell-derived exosomes (MSC-EXO) hold regenerative promise, their native cargo lacks the adaptability to withstand such a hostile microenvironment, limiting therapeutic efficacy. Here, we demonstrated a synergistic strategy involving reverse-adaptation and engineered MSC exosomes against ferroptosis in osteoarthritis. Firstly, the reverse-adaptation strategy in which OA-like oxidative stress was harnessed to precondition MSCs, thereby identifying miR-142a-3p as a key therapeutic mediator in tert-butyl hydroperoxide (TBHP)-modified exosomes (T-EXO). Subsequently, we engineered MSC-derived exosomes via miR-142a-3p electroporation (EXO<sup>miR-142a-3p</sup>) with unique anti-ferroptosis and antioxidative properties. EXO<sup>miR-142a-3p</sup> were markedly enriched with miR-142a-3p, which directly targeted the GSK3β/Nrf2/SLC7A11 axis to suppress ferroptosis and reactive oxygen species (ROS) accumulation. Compared to naive EXO, EXO<sup>miR-142a-3p</sup> exhibited superior protection against cartilage matrix degradation and significantly slowed OA progression in a murine model. By integrating these engineered exosomes into a biodegradable, cartilage-targeted, and lubricious microsphere platform, we achieved sustained, site-specific delivery that amplified therapeutic durability and efficacy. This platform robustly mitigated extracellular matrix (ECM) degradation, ferroptosis, and oxidative stress in vitro, and conferred significant cartilage protection in a destabilization of medial meniscus (DMM)-induced OA model via efficient, prolonged intra-articular release. Collectively, this innovative approach not only provides potent cartilage protection in preclinical models but also establishes a paradigm for precision, microenvironment-adaptive regenerative therapies for OA and other degenerative diseases.

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