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A 3D bioprinted in vitro full-thickness skin aging model
Juhi Chakraborty1, Abhishak C Gupta1, Sourabh Ghosh1
1Department of Textile and Fibre Engineering, Indian Institute of Technology Delhi, New Delhi-110016, India. Sourabh.Ghosh@textile.iitd.ac.in.
Journal of Materials Chemistry. B
|July 14, 2025
Summary
Researchers developed a 3D bioprinted skin aging model using silk fibroin-gelatin bioink. This model effectively replicates aged skin characteristics and can be used for disease modeling and drug screening.
Area of Science:
- Biotechnology
- Tissue Engineering
- Dermatology
Background:
- Skin aging is a complex physiological process involving cumulative changes affecting skin function.
- Developing accurate in vitro aging skin models is challenging due to skin's multi-cellular nature and the cumulative aspect of aging.
- Existing models often fail to fully recapitulate the intricate dermal-epidermal junction of aged skin.
Purpose of the Study:
- To develop a novel 3D bioprinted skin aging model.
- To replicate key features of aged skin, including the dermal-epidermal junction.
- To validate the model's efficacy in recapitulating extrinsic aging and explore methods for inducing senescence.
Main Methods:
- Utilized a silk fibroin-gelatin bioink for 3D bioprinting a dual-layered skin model (epidermis and dermis).
- Employed senescent/late-passage fibroblasts and keratinocytes in co-culture, compared to early-passage cells.
- Induced aging conditions using oxidative stress (H2O2) and elevated glucose.
Main Results:
- The model successfully recapitulated aged skin attributes, showing reduced fibronectin and collagen I, II, and IV expression.
- Senescent cells in co-culture effectively mimicked aged skin characteristics compared to proliferative cells.
- High glucose exposure demonstrated greater potency in inducing aging phenotypes than H2O2.
Conclusions:
- The developed 3D bioprinted skin model accurately mimics key features of in vitro aged skin.
- This model serves as a valuable tool for aging research, disease modeling, and pharmaceutical screening.
- Elevated glucose is a potent inducer of aging phenotypes in this skin model, offering an alternative to traditional senescence induction methods.

