Injectable biodegradable hydrogels for in situ tissue engineering

Elnaz Abedini , Daver Ali

Exploration of Biomat-X ›› 2026, Vol. 3 ›› Issue (1) : 101371

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Exploration of Biomat-X ›› 2026, Vol. 3 ›› Issue (1) :101371 DOI: 10.37349/ebmx.2026.101371
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Injectable biodegradable hydrogels for in situ tissue engineering
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Abstract

Biodegradable hydrogels are injected in situ to create scaffolds in complex tissue defects with a minimally invasive approach. The current narrative review critically discusses their design principles such as polymer type (natural, synthetic and hybrid systems), crosslinking processes (physical, chemical, and self-crosslinking strategies), and optimization of their rheological properties for clinical injectability. Various advanced biofunctionalization strategies such as cell encapsulation, spatiotemporal delivery of growth factors, extracellular matrix mimicry via fiber-reinforced composites, and active immunomodulation are assessed for their application in tissue-specific regeneration in cartilage, bone, cardiac, neural, skin, and dental applications. While there has been significant progress in preclinical work, there are significant translational challenges that remain: mechanical mismatch with load-bearing native tissues, natural polymer batch-to-batch variability, unpredictable degradation rates, and a complex regulatory pathway for combination products. We explore under-explored areas such as 4D bioprinting for dynamic shape morphing, the design of materials through artificial intelligence, and closed-loop theranostic platforms that combine real-time biosensing with on-demand therapeutic release. This review suggests that the interdisciplinary convergence of materials science, bioengineering, and regulatory science is necessary to tackle these challenges and make injectable hydrogels a standard-of-care regenerative therapeutic.

Keywords

injectable hydrogel / biodegradable scaffolds / in situ tissue engineering / crosslinking / bio-functionalization / regenerative medicine / stimuli-responsive hydrogel

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Elnaz Abedini, Daver Ali. Injectable biodegradable hydrogels for in situ tissue engineering. Exploration of Biomat-X, 2026, 3 (1) : 101371 DOI:10.37349/ebmx.2026.101371

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