Engineering the Healing Process: Advanced In Vitro Wound Models and Technologies
Abstract
1. Introduction
2. Old Style Models: 2D Cell Cultures and Animal Models
Methods for In Vitro Wound Induction
3. 3D Tissue-Engineered Skin Equivalents
3.1. Mechanism and Development Strategy
3.2. Evaluation of Hydrogel Formulations: Mechanism and Advantages
3.3. Biomaterials and Mechanical Cues in Wound Modeling
3.4. The Functional Role of Additional Cell Types
3.5. Clinical Success and Regulatory Challenges
3.6. Advantages and Limitations
| Material | Crosslinking | Advantages | Limitations | Applications |
|---|---|---|---|---|
| Collagen [48] | Enzymatic/pH | Biocompatibility | Low mechanics | Dermal scaffolds |
| GelMA [49] | Photo-crosslink | Tunable stiffness | UV toxicity risk | Bioinks; microchips |
| Fibrin [50] | Enzymatic | Pro-angiogenic | High shrinkage | Acute wound clots |
| dECM [51] | Chemical/thermal | Native factors | Standardization | Specific modeling |
| Hyaluronic Acid [52] | Chemical | Hydration | Poor cell adhesion | Chronic wounds |
| Alginate [53] | Ionic (Ca2+) | Ease of use | Low bioactivity | Bioprinting |
| Synthetic (PEG) [54] | Chemical/photo | Reproducibility | Bio-inert | Mechanobiology |
4. Critical Perspective for In Vitro Platforms
4.1. Challenges in Cell Sourcing and Phenotypic Stability
4.2. Immune Competence and Inflammation Modeling
4.3. Skin Innervation
5. Advanced Strategies for In Vitro Vascularization and Perfusion
6. Bioprinting Technologies
6.1. Clinical Success and Regulatory Challenges
6.2. Advantages and Limitations
7. Microfluidic and Organ-on-Chip Systems
7.1. Wound-on-Chip Relevant Studies
7.2. Clinical Success and Regulatory Challenges
7.3. Advantages and Limitations
8. Skin Organoids
8.1. Clinical Success and Regulatory Challenges
8.2. Advantages and Limitations
9. Stem Cell Technologies
9.1. Clinical Success and Regulatory Challenges
9.2. Advantages and Limitations
10. Pathological and Disease-Specific Models
11. Current Challenges and Future Perspectives
Integrated Framework for Research and Clinical Applications
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Model Type | Key Features | Main Findings | Relevance to Wound Healing |
|---|---|---|---|
| Traditional Engineered Skin [4,23] | Fibroblasts in collagen gel; superficial keratinocyte layer. | Basic epidermal–dermal interaction; monitored matrix remodeling. | Provides a baseline for studying simple re-epithelialization. |
| Advanced 3D Bioprinted Models [18,20,69,70,71] | Precise spatial deposition; vascular networks; gradients of stiffness. | Mirrors complex topography; enables angiogenesis via VEGF/PDGF. | Enables study of heterogeneous tissue repair and deep-tissue regeneration. |
| High-Throughput Screening Systems [72,73] | Automated, reproducible fabrication of digital architectures. | Efficient testing of novel biomaterials and pharmacological agents. | Accelerates the discovery of new drugs and bioactive dressings. |
| Model Type | Key Features | Main Findings | Relevance to Wound Healing Research |
|---|---|---|---|
| Microengineered skin model [93] | Human skin equivalent with microvascular networks using endothelial cells and keratinocytes | Demonstrated formation of perfusable vascularized skin constructs | Provides a platform for studying vascularization and tissue regeneration in engineered skin models |
| Skin-on-a-chip microfluidic system [94] | Microfluidic chip integrating epidermal and dermal layers with controlled perfusion | Reproduced inflammatory responses and edema-like conditions | Enables investigation of inflammatory processes involved in wound healing |
| Microfluidic wound-healing assay [19] | Microfluidic culture system allowing controlled epithelial injury and monitoring of cell migration | Demonstrated quantitative analysis of cell migration and wound closure dynamics | Useful for studying mechanisms of epithelial repair and screening therapeutic compounds |
| Full-thickness skin-on-chip model [95] | Multi-layered human skin equivalent with epidermal and dermal compartments | Enabled investigation of tissue regeneration and barrier function under dynamic conditions | Provides physiologically relevant environment to study wound repair and tissue remodeling |
| Bioelectronic wound-healing model [92] | Platform applying controlled electrical stimulation to wounded epithelial cells | Electrical signals accelerated wound closure and cell migration | Demonstrates the role of bioelectric cues in regulating wound healing processes |
| Model Type | Key Features | Main Findings | Relevance to Wound Healing |
|---|---|---|---|
| iPSC-Derived Skin Organoids [97] | Pluripotent stem cell-based; autonomous self-organization; mimics embryonic morphogenesis. | Successfully recapitulated layered epidermis, dermis, and even hair follicles. | Provides a “developmental blueprint” for scarless healing and tissue maturation. |
| Co-culture Systems [96,98] | Integration of keratinocytes and fibroblasts in 3D; layered architecture. | Observed real-time basement membrane maturation and epidermal stratification. | Essential for studying re-epithelialization and dermal remodeling dynamics. |
| Immune-Integrated Organoids [99] | Inclusion of resident or systemic immune cells (e.g., macrophages/T-cells). | Captures inflammatory signaling pathways and their effect on tissue repair. | Models the inflammatory phase of healing and the pathophysiology of chronic wounds. |
| Patient-Derived Organoids [100] | Created from donor-specific cells; preserves genetic and molecular signatures. | Maintains donor-specific responses to treatments and biomaterials. | Enables personalized medicine and preclinical testing of targeted therapies. |
| Vascularized/Biomechanical Models [101,102] | Advanced bioengineering incorporating flow or mechanical tension. | Enhanced physiological representation; improved nutrient transport and stress response. | Bridges the gap between lab research and clinical translation for complex wound care. |
| Model Type | Key Features | Main Findings | Relevance to Wound Healing |
|---|---|---|---|
| iPSC-Derived Skin Cells [108,109] | Keratinocytes, fibroblasts, and endothelial cells derived from pluripotent cells. | Ability to simulate pathological conditions like aging and chronic inflammation. | Bridges the gap toward personalized regenerative medicine and biomaterial testing. |
| Patient-Specific Models [61,110] | Cells derived from patients with specific clinical backgrounds. | Models individual variability and specific disease impairments (e.g., diabetic ulcers). | Investigates the molecular basis of chronic non-healing wounds and autoimmune diseases. |
| Isogenic Control Lines [111] | Integration of iPSC tech with CRISPR/Cas9 gene editing. | Enables precise dissection of specific genetic mutations vs. environmental factors. | Clarifies the role of signaling pathways in impaired repair processes. |
| Gene-Edited Therapeutic Models [41,112] | Targeted genetic modification of patient-specific cells. | Elucidates the molecular basis of rare skin disorders. | Facilitates the development of tailored therapeutic strategies for rare conditions. |
| Model Type | Cellular Complexity | ECM Realism | Vascularization | Immune Comp. | Innervation | Dynamic Stimuli | Throughput | Cost |
|---|---|---|---|---|---|---|---|---|
| 2D Culture [11,37] | Low | Poor | None | None | None | Limited | Very High | Low |
| Animal Models [70,117] | High | High (Native) | Full | Full | Full | High | Low | High |
| 3D Skin Equivalents [74,76] | Moderate | Good | Limited | Occasional | Rare | Static | Moderate | Moderate |
| Bioprinting [101,118] | High | High (Bioinks) | Designed | Emerging | Emerging | Moderate | High | High |
| Organ-on-Chip [40,95] | High | Moderate/High | Perfusion | Integrated | Emerging | High (Shear) | Moderate | High |
| Organoids [96,97] | Very High | Very High | Spontaneous | Emerging | Emerging | Moderate | Moderate | Moderate |
| iPSC-derived [108,109,115] | Personalized | Good | High Potential | Emerging | High Potential | Varies | Moderate | High |
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Renò, F.; Migliario, M.; Sabbatini, M. Engineering the Healing Process: Advanced In Vitro Wound Models and Technologies. Biomedicines 2026, 14, 754. https://doi.org/10.3390/biomedicines14040754
Renò F, Migliario M, Sabbatini M. Engineering the Healing Process: Advanced In Vitro Wound Models and Technologies. Biomedicines. 2026; 14(4):754. https://doi.org/10.3390/biomedicines14040754
Chicago/Turabian StyleRenò, Filippo, Mario Migliario, and Maurizio Sabbatini. 2026. "Engineering the Healing Process: Advanced In Vitro Wound Models and Technologies" Biomedicines 14, no. 4: 754. https://doi.org/10.3390/biomedicines14040754
APA StyleRenò, F., Migliario, M., & Sabbatini, M. (2026). Engineering the Healing Process: Advanced In Vitro Wound Models and Technologies. Biomedicines, 14(4), 754. https://doi.org/10.3390/biomedicines14040754
