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◆ Colloids and surfaces. B, Biointerfaces2026-09-09

Macromolecule-based hydrogels for meniscus regeneration: Natural, synthetic and hybrid systems.

Wenyan Wang, Jie Wu, Yutong Wang, Hongchao Zhang, Jiangmei Cao, Xu Duan, Xing Gao

原始摘要(英文原文)· Original abstract
Meniscal injuries have limited intrinsic healing capacity because of the tissue's regional vascular gradient, anisotropic load-bearing architecture, and long-term exposure to compressive, shear and sliding forces. Hydrogel engineering offers an important strategy for meniscal regeneration by providing tissue-like hydrated networks, tunable mechanical properties, bioactive delivery capacity and minimally invasive implantation. Centered on the "structure-property-function" relationship, this Review systematically summarizes recent advances in biomacromolecule-based hydrogels for meniscal repair, comparing natural, synthetic and hybrid hydrogel systems. We focus on lubrication, wet adhesion, degradation control, pore architecture and fatigue-resistant design, and further discuss hydrogel-mediated delivery strategies for growth factors, stem cells and extracellular vesicles. We also analyse the major barriers to clinical translation, including mechanical mismatch, insufficient long-term integration, scarce clinical-trial evidence, scalable manufacturing, sterilization and quality control, and regulatory classification. Finally, we highlight emerging directions such as zonally precise hydrogels, stimuli-responsive matrices, 4D bioprinting, digital-twin modelling and AI-assisted formulation design. We further propose a clinically oriented design framework that links tear morphology and the continuum of vascular zones to specific hydrogel roles, thereby providing practical guidance for developing lesion-specific meniscal-regeneration hydrogels that combine load-bearing performance, biological instructiveness and potential for clinical translation.
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Macromolecule-based hydrogels for meniscus regeneration: Natural, synthetic and hybrid systems. — 科研速览 Science Skim