Related Experiment Video
Updated: Aug 14, 2026

Constructing a Collagen Hydrogel for the Delivery of Stem Cell-loaded Chitosan Microspheres
Published on: June 1, 2012
Core-shell microsphere structure stimulation: Effects on cell behavior and collagen synthesis for regenerative
Guizhen Li1, Haoran Zeng2, Shiying Li3
1Faculty of Chinese Medicine, Medical Sciences Division, Macau University of Science and Technology, Macau 999078, China; School of Traditional Chinese Medicine, Guangdong Pharmaceutical University, Guangzhou 510006, China.
Abstract:
The unique structure of core-shell microspheres offers novel strategies for manipulating the sequence of cell contact, as the regenerative process is time-dependent and relies on stimulation provided by the implant materials. In this study, 6 types of core-shell microspheres with hydrophilic core/hydrophobic shell and hydrophobic core/hydrophilic shell configurations were prepared (i.e. PCL@AG, PCL@CS, and PCL@Alg, AG@PCL, CS@PCL, Alg@PCL). Among these, PCL@AG microspheres with an average particle size of 26.97 μm, exhibited high core-shell formation probability of 88.21%, and showed a prolonged degradation rate of 13.12% during 60-day test. Evaluation using in vitro co-culture systems revealed that all microspheres no significant short-term cytotoxicity (live cell ratio ranging from 95.33% to 98.86%). Microspheres with a hydrophobic PCL shell and a hydrophilic natural polymer core (PCL@AG, PCL@CS, PCL@Alg) significantly outperformed their inverse counterparts in promoting cell viability (relative viability 106.55%-156.59%) and migration (PCL@AG, highest wound closure 63.13%) by providing initial stimulation. The group treated by PCL@AG showed the most pronounced effects in promoting the synthesis of type I collagen (34.38 ng/mL) and type III collagen (125.65 ng/mL) as well as COX-2 expression (110.12 pg/mL), while maintaining a relatively low IL-6 level (28.51 pg/mL). The RT-qPCR analysis further confirmed that the PCL-shell/hydrophilic-core structure significantly upregulated the expression of COL1A1 and COL3A1. Dynamic observation of fibroblasts co-cultured with PCL@AG microspheres on a microfluidic chip revealed that the microspheres guided fibroblasts to migrate from the 2D plane onto the microsphere surface, gradually forming a 3D encapsulation that mimics the function of an extracellular matrix scaffold. In summary, core-shell microspheres combined with sequential mechanical stimulation can regulate fibroblast cell behavior. The findings verified the need for a PCL shell to provide essential stimulation to drive appropriate cell proliferation at an early stage, while the hydrophilic core, particularly one with gelling properties at room temperature, was able to maintain continuous stimulation for collagen synthesis and remodeling at a low inflammatory level.
More Related Videos
08:43Recombinant Collagen I Peptide Microcarriers for Cell Expansion and Their Potential Use As Cell Delivery System in a Bioreactor Model
Published on: February 7, 2018
10:51Microfluidic Fabrication of Core-Shell Microcapsules carrying Human Pluripotent Stem Cell Spheroids
Published on: October 13, 2021
Related Concept Videos
Stem Cell Therapy for Tissue Regeneration
Types of Stem Cells used in Stem Cell Therapy
The two main cell types that...
Clinical Applications of Epidermal Stem Cells