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研究麦卢卡蜂蜜掺入冷冻凝胶、水凝胶和电纺组织工程支架后的抗菌特性。

Investigating Manuka Honey Antibacterial Properties When Incorporated into Cryogel, Hydrogel, and Electrospun Tissue Engineering Scaffolds.

作者信息

Hixon Katherine R, Bogner Savannah J, Ronning-Arnesen Gabriela, Janowiak Blythe E, Sell Scott A

机构信息

Department of Biomedical Engineering, Parks College of Engineering, Aviation, and Technology, Saint Louis University, St. Louis, MO 63103, USA.

Department of Biology, Saint Louis University, St. Louis, MO 63110, USA.

出版信息

Gels. 2019 Apr 18;5(2):21. doi: 10.3390/gels5020021.

Abstract

Honey is well-known for its wound healing capability and Manuka honey (MH) contains a unique Manuka factor, providing an additional antibacterial agent. Previously, there has not been a practical way to apply MH to a wound site, which renders treatment for an extended period extremely difficult. Tissue-engineered scaffolds offer an alternative treatment method to standard dressings by providing varying geometries to best treat the specific tissue. MH was incorporated into cryogels, hydrogels, and electrospun scaffolds to assess the effect of scaffold geometry on bacterial clearance and adhesion, as well as cellular adhesion. Electrospun scaffolds exhibited a faster release due to the nanoporous fibrous geometry which led to a larger partial bacterial clearance as compared to the more three-dimensional cryogels (CG) and hydrogels (HG). Similarly, the fast release of MH from the electrospun scaffolds resulted in reduced bacterial adhesion. Overall, the fast MH release of the electrospun scaffolds versus the extended release of the HG and CG scaffolds provides differences in cellular/bacterial adhesion and advantages for both short and long-term applications, respectively. This manuscript provides a comparison of the scaffold pore structures as well as bacterial and cellular properties, providing information regarding the relationship between varying scaffold geometry and MH efficacy.

摘要

蜂蜜以其伤口愈合能力而闻名,麦卢卡蜂蜜(MH)含有独特的麦卢卡因子,是一种额外的抗菌剂。以前,没有一种将MH应用于伤口部位的实用方法,这使得长时间的治疗极其困难。组织工程支架通过提供不同的几何形状来最佳地治疗特定组织,为标准敷料提供了一种替代治疗方法。将MH掺入冷冻凝胶、水凝胶和电纺支架中,以评估支架几何形状对细菌清除、粘附以及细胞粘附的影响。由于纳米多孔纤维几何形状,电纺支架表现出更快的释放速度,与更三维的冷冻凝胶(CG)和水凝胶(HG)相比,导致更大程度的部分细菌清除。同样,MH从电纺支架中的快速释放导致细菌粘附减少。总体而言,电纺支架中MH的快速释放与HG和CG支架的缓释相比,分别在细胞/细菌粘附方面存在差异,且在短期和长期应用中各有优势。本文比较了支架的孔隙结构以及细菌和细胞特性,提供了关于不同支架几何形状与MH疗效之间关系的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4971/6631429/9d3c412dc338/gels-05-00021-g001.jpg

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