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One-step generation of core-shell biomimetic microspheres encapsulating double-layer cells using microfluidics for hair regeneration. | LitMetric

One-step generation of core-shell biomimetic microspheres encapsulating double-layer cells using microfluidics for hair regeneration.

Biofabrication

Department of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, Guangdong 510515, People's Republic of China.

Published: February 2023

AI Article Synopsis

  • Tissue engineering of hair follicles (HFs) shows promise for treating hair loss through a new microfluidic technology that creates double-layer cell and growth factor microdroplets.
  • The developed G/HAD microspheres combine mouse mesenchymal cells and epidermal cells in a biocompatible gelatin-based structure that supports cell growth and effective growth factor release.
  • These microspheres can efficiently generate hair follicles when implanted into mouse skin, offering a scalable method for hair regeneration that could enhance existing hair restoration therapies and be adapted for other organoid applications.

Article Abstract

Tissue engineering of hair follicles (HFs) has enormous potential in the treatment of hair loss. HF morphogenesis is triggered by reciprocal interactions between HF germ epithelial and mesenchymal layers. Here, a microfluidic-assisted technology is developed for the preparation of double aqueous microdroplets that entrap double-layer cells and growth factors to ultimately be used for hair regeneration. Mouse mesenchymal cells (MSCs) and epidermal cells (EPCs) are encapsulated in gelatin methacrylate (GelMA) cores and photo-curable catechol-grafted hyaluronic acid (HAD) shells to fabricate GelMA-MSC/HAD-EPC (G/HAD) microspheres. The findings show that the G/HAD microspheres exhibit ultrafast gelation, aqueous phase separation, superior biocompatibility, and favorable wet adhesion properties. G/HAD microspheres can also support cell proliferation and sustain growth factor release. These composite cell microspheres are capable of efficient HF generation upon transplantation into the dorsal dermis of nude mice. This finding facilitates the large-scale preparation of approximately 80 double-layer cell spheres per min. This simple double-layer cell sphere preparation approach is a promising strategy for improving current hair-regenerative medicine techniques and can potentially be applied along with other organoid techniques for extended applications.

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Source
http://dx.doi.org/10.1088/1758-5090/acb107DOI Listing

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