English

HUVECs-encapsulation via Millimeter-sized Alginate Droplets

Fluid Dynamics 2023-09-18 v1

Abstract

Droplet microfluidics are a powerful approach for hydrogel cell encapsulations. Much of the field has focused on single-cell encapsulations with pico-nanoliter droplet volumes necessary for single-cell sequencing or high-throughput screening. These small volumes, however, limit the use of hydrogel droplets for tissue engineering or cell therapies. We describe simple droplet microfluidics to generate millimeter-sized alginate droplets and demonstrate their use for cell encapsulations. This effort builds on our recent efforts, specifically by replacing the glass slide forming the bottom layer of the chamber with a more hydrophobic acrylic (PMMA) layer to improve the alginate-in-oil droplet formation. Using glass layer and PMMA layer devices, we characterized the tunable production of water-in-oil droplets (average droplet lengths ranged from 0.8 to 3.7 mm). Next, PMMA layer devices were used to demonstrate the tunable generation of alginate-in-oil droplets (average droplet lengths ranged from 3-6 mm). Increasing the flow ratio (Q.ratio = Q.oil/Q.alginate) led to more uniform droplets as measured by the coefficient of variance, which was approximately 5%. Finally, a proof-of-use experiment used HUVEC-encapsulated alginate droplets as part of a scratch-healing assay. Specifically, HUVEC-encapsulated droplets (AH droplets) led to the recovery of 3T3 fibroblast monolayers compared to no droplets or cell-free droplets (A droplets). Our results extended the use of simple microfluidics to generate and retrieve millimeter-sized alginate droplets for effective cell encapsulations.

Keywords

Cite

@article{arxiv.2309.08012,
  title  = {HUVECs-encapsulation via Millimeter-sized Alginate Droplets},
  author = {Khanh Tran and Brenda A. A. B. Ametepe and Erika L. Gomez and Daniel Ramos and Clare Kim and Ga-Young Kelly Suh and Siavash Ahrar and Perla Ayala},
  journal= {arXiv preprint arXiv:2309.08012},
  year   = {2023}
}

Comments

13 pages, 6 figures

R2 v1 2026-06-28T12:22:04.643Z