Sheikh-Oleslami Sara, Tao Brendan, D'Souza Jonathan, Butt Fahad, Suntharalingam Hareshan, Rempel Lucas, Amiri Nafise
Faculty of Medicine, The University of British Columbia, 317-2194 Health Sciences Mall, Vancouver, BC V6T 1Z3, Canada.
Faculty of Engineering, McMaster University, 1280 Main Street West, Hamilton, ON L8S 4L7, Canada.
Gels. 2023 Jul 22;9(7):591. doi: 10.3390/gels9070591.
An evolving field, nanotechnology has made its mark in the fields of nanoscience, nanoparticles, nanomaterials, and nanomedicine. Specifically, metal nanoparticles have garnered attention for their diverse use and applicability to dressings for wound healing due to their antimicrobial properties. Given their convenient integration into wound dressings, there has been increasing focus dedicated to investigating the physical, mechanical, and biological characteristics of these nanoparticles as well as their incorporation into biocomposite materials, such as hydrogel scaffolds for use in lieu of antibiotics as well as to accelerate and ameliorate healing. Though rigorously tested and applied in both medical and non-medical applications, further investigations have not been carried out to bring metal nanoparticle-hydrogel composites into clinical practice. In this review, we provide an up-to-date, comprehensive review of advancements in the field, with emphasis on implications on wound healing in in vivo experiments.
作为一个不断发展的领域,纳米技术已在纳米科学、纳米颗粒、纳米材料和纳米医学等领域崭露头角。具体而言,金属纳米颗粒因其抗菌特性在伤口愈合敷料中的多样用途和适用性而备受关注。鉴于它们能方便地整合到伤口敷料中,人们越来越专注于研究这些纳米颗粒的物理、机械和生物学特性,以及将它们掺入生物复合材料中,例如用于替代抗生素以及加速和改善愈合的水凝胶支架。尽管已在医学和非医学应用中进行了严格测试和应用,但尚未开展进一步研究将金属纳米颗粒 - 水凝胶复合材料引入临床实践。在本综述中,我们提供了该领域最新的全面进展综述,重点是体内实验对伤口愈合的影响。