Regenerative medicine and disease models have evolved in recent years from two to three dimensions, providing in vitro constructs that are more similar to in vivo tissues. By mimicking native tissues, cell-derived matrices (CDMs) have emerged as new modifiable extracellular matrices for a variety of tissues, allowing researchers to study basic cellular processes in tissue-like structures, test tissue regeneration approaches, and model disease development. In this review, different fabrication techniques and characterization methods of CDMs are presented and examples of their application in cell behavior studies, tissue regeneration, and disease models are provided. In addition, future guidelines and perspectives in the field of CDMs are discussed.
Bioreactor systems allow safe and reproducible production of tissue constructs and functional analysis of cell behavior in biomaterials. However, current procedures for the analysis of tissue generated in biomaterials are destructive. We describe a transparent perfusion system that allows real-time bioluminescence imaging of luciferase expressing cells seeded in scaffolds for the study of cell-biomaterial interactions and bioreactor performance. A prototype provided with a poly(lactic) acid scaffold was used for "proof of principle" studies to monitor cell survival in the scaffold (up to 22 days). Moreover, using cells expressing a luciferase reporter under the control of inducible tissue-specific promoters, it was possible to monitor changes in gene expression resulting from hypoxic state and endothelial cell differentiation. This system should be useful in numerous tissue engineering applications, the optimization of bioreactor operation conditions, and the analysis of cell behavior in three-dimensional scaffolds.
Most of the synthetic polymeric biomaterials used for biomedical applications lack of functional groups able to specifically instruct cells to unlock their potential for tissue regeneration. Surface modification strategies are able to overcome this limitation by introducing bioactive cues. In this study, several functionalization approaches are analyzed. Wet chemical methods such as controlled hydrolysis of polyesters followed by biomolecules grafting by carbodiimide chemistry are simple and versatile approaches, able to succesfully improve the bioactivity of devices with virtually any architecture. Grafting of short peptides, extracellular matrix proteins (ECM) or engineered protein-like recombinamers are promising techniques to improve cell adhesion to biomaterials, including polylactic acid (PLA) and its derivatives. ECM molecules and recombinamers can present more effectively bioactive signals, even in presence of competing, nonadhesive serum proteins. Besides adhesion, surface modifications intended to improve cell attachment, play a role on other cell responses, such as migratory potential. Collagen coating were shown to enhance the expression of the migratory receptor CXCR4 in mesenchymal stromal cells, when compared to short RGD peptides, while the modality of functionalization (covalent vs. physisorbed) tuned the rate of cell migration from PLA-based microcarriers. This multiple effects have to be taken into account when designing biomaterials for cell delivery and tissue engineering. Furthermore, as we aim to recapitulate in vitro the complexity of native tissues, alternative strategies based on the generation of decellularized polymer scaffold rich in cell-deposited ECM are proposed.