Multifunctional hydrogel scaffolds for endogenous osteochondral regeneration

Osteochondral defects, frequently resulting from trauma, infection, or degenerative joint disease, present a significant clinical challenge due to their limited intrinsic healing capacity. Conventional cell-based therapies face limitations including immune rejection, high costs, and regulatory hurdles. Endogenous tissue engineering, which harnesses the body's own repair machinery through biomaterial-mediated recruitment and differentiation of host stem cells, offers a promising alternative. Hydrogel scaffolds, owing to their extracellular matrix-mimetic architecture, tunable physicochemical properties, and capacity for bioactive factor delivery, have emerged as versatile platforms for endogenous osteochondral regeneration. This review provides a strategic overview of hydrogel-based endogenous tissue engineering, covering: (1) the biological rationale for leveraging host cell sources; (2) the design of hydrogels as extracellular matrix -mimetic niches; (3) key regulatory factors; (4) innovative material design strategies. We also discuss current challenges related to long-term functionality, scaffold integration, and clinical translation, offering insights into the development of next-generation hydrogel systems for minimally invasive and effective osteochondral regeneration.

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Publication Details

Journal
Regenerative Therapy
Published
2026-10-03
DOI
https://doi.org/10.1016/j.reth.2026.101181
Primary Topic
Osteoarthritis Treatment and Mechanisms
Type
article
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article

Multifunctional hydrogel scaffolds for endogenous osteochondral regeneration

刘南珍, Xuan Liu, Qidi Ai, Yantao Yang et al.
Regenerative Therapy
Osteoarthritis Treatment and Mechanisms
article

Multifunctional hydrogel scaffolds for endogenous osteochondral regeneration

刘南珍, Xuan Liu, Qidi Ai, Yantao Yang, Songwei Yang, Ling Zhang, Haojie Zhang, Jinping Liang, Mengxiao Wei, Boyu Kuang, Linjia Wu
article en

Abstract

Osteochondral defects, frequently resulting from trauma, infection, or degenerative joint disease, present a significant clinical challenge due to their limited intrinsic healing capacity. Conventional cell-based therapies face limitations including immune rejection, high costs, and regulatory hurdles. Endogenous tissue engineering, which harnesses the body's own repair machinery through biomaterial-mediated recruitment and differentiation of host stem cells, offers a promising alternative. Hydrogel scaffolds, owing to their extracellular matrix-mimetic architecture, tunable physicochemical properties, and capacity for bioactive factor delivery, have emerged as versatile platforms for endogenous osteochondral regeneration. This review provides a strategic overview of hydrogel-based endogenous tissue engineering, covering: (1) the biological rationale for leveraging host cell sources; (2) the design of hydrogels as extracellular matrix -mimetic niches; (3) key regulatory factors; (4) innovative material design strategies. We also discuss current challenges related to long-term functionality, scaffold integration, and clinical translation, offering insights into the development of next-generation hydrogel systems for minimally invasive and effective osteochondral regeneration.

Regenerative TherapyVol. 33
Hunan University of Traditional Chinese Medicine (CN)
Openalex Percentile: Top 10%
Osteoarthritis Treatment and Mechanisms
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Multifunctional hydrogel scaffolds for endogenous osteochondral regeneration — 刘南珍, Xuan Liu, et al. · Regenerative Therapy (2026) | TGRS Research Map | TGRS