Fabrication of oxygen-releasing dextran microgels by droplet-based microfluidic method.

RSC Adv

Department of Applied Chemistry, Graduate School of Engineering, Osaka University 2-1 Yamadaoka, Suita Osaka 565-0871 Japan

Published: August 2024

AI Article Synopsis

  • The study focuses on creating oxygen-releasing microgels for tissue engineering using a microfluidic system, which can help prevent tissue death due to low oxygen levels.
  • These microgels are made from biocompatible materials and incorporate calcium peroxide (CP) for oxygen release, designed for applications like cell scaffolds and 3D bioprinting.
  • The research highlights that by manipulating the conditions, such as pH, the oxygen release can be controlled when the microgels dissolve, paving the way for innovative biomaterials in tissue engineering.

Article Abstract

In the tissue engineering field, the supply of oxygen to three-dimensional (3D) tissues is an important aspect to avoid necrosis due to hypoxia. Although oxygen-releasing bulk materials containing calcium peroxide (CaO, CP) have attracted much attention, micrometer-sized oxygen-releasing soft materials would be advantageous because of their highly controllable structures, which can be applied for cell scaffolds, injectable materials, and bioink components in 3D bioprinting. In this study, oxygen-releasing microgels were fabricated a droplet-based microfluidic system. Homogeneous, monodisperse and stable oxygen-releasing microgels were obtained by photo-crosslinking of droplets composed of biocompatible dextran modified with methacrylate groups and CP nanoparticles as an oxygen source. We also used our microfluidic system for the amorphous calcium carbonate (CaCO, ACC) formation on the surface of CP nanoparticles to achieve the controlled release of oxygen from the microgel. Oxygen release from an ACC-CP microgel in a neutral cell culture medium was suppressed because incorporation of CP in the ACC suppressed the reaction with water. Strikingly, stimuli to dissolve ACC such as a weak acidic conditions triggered the oxygen release from microgels loaded with ACC-CP, as the dissolution of CaCO allows CP to react. Taken together, applications of this new class of biomaterials for tissue engineering are greatly anticipated. In addition, the developed microfluidic system can be used for a variety of oxygen-releasing microgels by changing the substrates of the hydrogel network.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11339778PMC
http://dx.doi.org/10.1039/d4ra04356aDOI Listing

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