Aug 2026· Frontiers in Bioengineering and Biotechnology· Vol 14· 0 citations· 103 references
Medicine
TL;DR
This Mini-Review summarizes recent advances in natural, synthetic, and hybrid biomaterials, highlighting engineered ECM–derived hydrogels, modified natural polymers, and synthetic systems with tunable viscoelasticity, degradability, and bioactive components.
Abstract
Organoid research has fundamentally reshaped in vitro approaches to modeling disease, drug response, and developmental processes. While the potential is great, the technology is limited by reproducibility and physiological accuracy challenges that arise partly from the shortcomings in extracellular matrix mimicking biomaterials that influence morphogenesis, differentiation, and functionality. In recent years, biomaterials for organoid systems have developed from biologically derived but poorly defined matrices toward tunable, dynamic, and modular systems that allow for precise control and better reproducibility of the microenvironment. This Mini-Review summarizes recent advances, with a focus on the last 3 years, in natural, synthetic, and hybrid biomaterials, highlighting engineered ECM–derived hydrogels, modified natural polymers, and synthetic systems with tunable viscoelasticity, degradability, and bioactive components. Furthermore, emerging trends and technological integrations, comprised of 3D and 4D bioprinting, granular hydrogels, organ-on-a-chip platforms, and AI-driven methods, will be discussed, which together support scalable and data-driven optimizations in organoid research. Summarized, these developments demonstrate the transition from a generic matrix-based culture toward engineered, tunable, and dynamic microenvironments, demonstrating biomaterial design as a fundamental element for next-generation organoid systems.
Organoids are three-dimensional, stem-cell-derived tissue constructs that recapitulate the architecture and function of native organs, and they have rapidly emerged as transformative tools in regenerative medicine. Their translation from laboratory models to clinical therapies remains constrained, however, by the limit...
Shi-Han Sun, Si-Xuan Chen, Wenping Ma et al.· Organoids· 0 citations
A function-first framework in which regenerative organoids are engineered and evaluated according to measurable therapeutic outcomes, including tissue-specific function, vascular integration, immune compatibility, reproducibility, scalability, and long-term stability is proposed.
The locomotor system organoids, which recapitulate bones, cartilage, tendons, muscles, and associated neurovascular-like structures, possess complex architecture and biomechanical properties. Traditional two-dimensional (2D) cell models struggle to effectively mimic their physiological functions. Organoid technology,...
Rui Wang, Ye Tian, Geng-Hao Wang et al.· Regenerative Biomaterials· 0 citations
Organoids are high-fidelity in vitro models with substantial potential in biomedicine. However, traditional animal-derived matrix gels contain undefined components and have unpredictable mechanical properties, which greatly hinder the standardization and functional maturation of organoids. In recent years, nanofibers h...
Fuxian Liu, Zheng Cai, Yuanhuan Dai et al.· Colloids and Surfaces B: Bio...· 0 citations
3D bioprinting is an innovative technology that has advanced the field of tissue engineering and regenerative medicine by allowing the layer-by-layer deposition of cells, biomaterials, and bioactive molecules to create sophisticated biological constructs. In this context, bioinks serve as essential vehicles for creat...
Shruti R. Balkawade, Devika Sajeev, U. Nayak· ACS Omega· 0 citations
Three-dimensional bioprinting has rapidly advanced as a key technology in tissue engineering and regenerative medicine. While many reviews provide broad overviews of bioprinting techniques and materials, this work offers a focused analysis of the interface between bioprinting technologies and bioink chemistry. It exami...
Salwa Alshehri, A. Alrashoudi, Rayan A. Mulla et al.· Engineering Science in Addit...· 0 citations
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