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用于生物医学应用的灵菌红素功能化细菌纤维素膜的抗附着和抗菌性能研究。

Investigation of anti-adherence and antimicrobial properties of prodigiosin-functionalized bacterial cellulose membrane for biomedical applications.

机构信息

Hacettepe University, Faculty of Science, Department of Biology, Ankara, Turkey.

出版信息

J Biotechnol. 2024 Apr 10;385:58-64. doi: 10.1016/j.jbiotec.2024.03.002. Epub 2024 Mar 6.

DOI:10.1016/j.jbiotec.2024.03.002
PMID:38458539
Abstract

In this study, novel biomaterial that consisted entirely of bacterial products was developed with the approach of designing cost effective material for biomedical applications. With this aim, bacterial cellulose membranes (BCMs) which synthesized by Komagataeibacter intermedius were produced. Moreover, to impart antimicrobial properties to enhance the capacity of BCMs for biomedical usage, prodigiosin (PG) pigment of Serratia marcescens which presents wide range of antimicrobial activities was loaded to BCMs. Firstly, high yield of PG production was achieved, and then crude pigment was purified with silica gel column. The purified PG was characterized with thin layer chromatography and UV-visible spectrometry. The antimicrobial effect of the produced pigment on Gram-positive and negative bacteria and a yeast was investigated. The success of modification in PG-modified BCMs has been demonstrated by FTIR and SEM. Moreover, antimicrobial and antiadhesive ability of novel PG-BCMs were examined with disc diffusion and plate counting methods. As a result, it was established that PG-BCMs were able to inhibit the growth of all tested microorganisms. Furthermore, excellent antiadhesive effect was observed for the tested microorganisms with the inhibition rates of 82.05-96.25 %. Finally, cytotoxicity test with L929 cell line demonstrated that PG-BCM is biocompatible at a level that can be applied in in vivo studies.

摘要

在这项研究中,采用设计具有成本效益的生物医学应用材料的方法,开发了完全由细菌产物组成的新型生物材料。为此,合成了中间型Komagataeibacter 的细菌纤维素膜(BCM)。此外,为了赋予抗菌性能以提高 BCM 用于生物医学用途的能力,向 BCM 中加载了来自粘质沙雷氏菌的具有广泛抗菌活性的灵菌红素(PG)色素。首先,实现了 PG 的高产,然后用硅胶柱纯化了粗色素。通过薄层色谱法和紫外可见光谱法对纯化的 PG 进行了表征。研究了所产生的色素对革兰氏阳性和阴性细菌以及酵母的抗菌作用。通过傅里叶变换红外光谱(FTIR)和扫描电子显微镜(SEM)证明了 PG 修饰 BCM 中的修饰成功。此外,通过圆盘扩散和平板计数法研究了新型 PG-BCM 的抗菌和抗粘附能力。结果表明,PG-BCM 能够抑制所有测试微生物的生长。此外,对于测试的微生物,观察到了极好的抗粘附作用,抑制率为 82.05-96.25%。最后,用 L929 细胞系进行的细胞毒性试验表明,PG-BCM 在可应用于体内研究的水平上具有生物相容性。

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