Issue 22, 2024

Loureirin hydrogel promotes healing of radionuclide-contaminated wounds by regulating angiogenesis and immune cells

Abstract

Radionuclide-contaminated wounds face clinical dilemmas such as repeated erosion and ulceration and are difficult to heal. In this work, we aimed to develop a biodegradable hydrogel with a beneficial effect on radionuclide-contaminated wounds and initially investigated the mechanism of action of the hydrogel. The hydrogel was produced through the ring-opening polymerization of polycaprolactone (PCL) triggered by polyethylene glycol (PEG), and its physicochemical properties were characterized by gel permeation chromatography, nuclear magnetic resonance, rheological properties testing, and other techniques. The low critical solution temperatures were 30 °C and 46 °C, which are suitable for the human body to realize the degradable properties of the hydrogel. A radionuclide-contaminated wound model was established, which proved that the biodegradable hydrogel had good healing properties and did not form secondary lesions. The effect was better than clinically used EGF or VB12. Pathological results showed that mature granulation tissue formed on the 7th day after the injury, and by the 10th day after the injury, the scab had completely fallen off, the epithelial coverage had reached over 70% and the wound was essentially completely healed. Additionally, the hydrogel affects immune metabolism, regulates immune cell function, promotes the formation of new blood vessels and granular tissue, and effectively accelerates the healing process of radionuclide-contaminated wounds.

Graphical abstract: Loureirin hydrogel promotes healing of radionuclide-contaminated wounds by regulating angiogenesis and immune cells

Supplementary files

Article information

Article type
Paper
Submitted
17 Jun 2024
Accepted
21 Sep 2024
First published
03 Oct 2024

Biomater. Sci., 2024,12, 5789-5802

Loureirin hydrogel promotes healing of radionuclide-contaminated wounds by regulating angiogenesis and immune cells

Z. Wu, L. Xu, X. Xu, J. Hou, W. Li, G. Luo, Y. Xu, Q. Chen and F. Cui, Biomater. Sci., 2024, 12, 5789 DOI: 10.1039/D4BM00813H

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