Tissue Engineering Approaches in the Design of Healthy and Pathological Tissue Models
Overview
Affiliations
In the tissue engineering (TE) paradigm, engineering and life sciences tools are combined to develop bioartificial substitutes for organs and tissues, which can in turn be applied in regenerative medicine, pharmaceutical, diagnostic, and basic research to elucidate fundamental aspects of cell functions or to identify mechanisms involved in aging processes and disease onset and progression. The complex three-dimensional (3D) microenvironment in which cells are organized allows the interaction between different cell types and between cells and the extracellular matrix, the composition of which varies as a function of the tissue, the degree of maturation, and health conditions. In this context, 3D models can more realistically reproduce a tissue or organ than two-dimensional (2D) models. Moreover, they can overcome the limitations of animal models and reduce the need for tests, according to the "3Rs" guiding principles for a more ethical research. The design of 3D engineered tissue models is currently in its development stage, showing high potential in overcoming the limitations of already available models. However, many issues are still opened, concerning the identification of the optimal scaffold-forming materials, cell source and biofabrication technology, and the best cell culture conditions (biochemical and physical cues) to finely replicate the native tissue and the surrounding environment. In the near future, 3D tissue-engineered models are expected to become useful tools in the preliminary testing and screening of drugs and therapies and in the investigation of the molecular mechanisms underpinning disease onset and progression. In this review, the application of TE principles to the design of 3D models will be surveyed, with a focus on the strengths and weaknesses of this emerging approach. In addition, a brief overview on the development of models of healthy and pathological bone, heart, pancreas, and liver will be presented.
Marazzi D, Trovalusci F, Nardo P, Carotenuto F Biomimetics (Basel). 2025; 10(2).
PMID: 39997118 PMC: 11852423. DOI: 10.3390/biomimetics10020095.
Sousa A, Alvites R, Lopes B, Sousa P, Moreira A, Coelho A J Funct Biomater. 2025; 16(1).
PMID: 39852584 PMC: 11765675. DOI: 10.3390/jfb16010028.
Li C, Li J, Argall-Knapp Z, Hendrikse N, Farooqui M, Raykowski B Small. 2025; 21(9):e2402499.
PMID: 39811947 PMC: 11878254. DOI: 10.1002/smll.202402499.
Innovative Ink-Based 3D Hydrogel Bioprinted Formulations for Tissue Engineering Applications.
Sousa A, McDermott G, Shields F, Alvites R, Lopes B, Sousa P Gels. 2024; 10(12).
PMID: 39727588 PMC: 11675550. DOI: 10.3390/gels10120831.
The biological applications of IPN hydrogels.
Leon-Campos M, Mendoza J, Aguayo-Morales H, Cobos-Puc L, Cabrera-Munguia D, Claudio-Rizo J ADMET DMPK. 2024; 12(4):581-621.
PMID: 39473628 PMC: 11517517. DOI: 10.5599/admet.2398.