Novel nanoconjugates of metal oxides and natural red pigment from the endophyte Monascus ruber using solid-state fermentation.

IF 4.3 2区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Microbial Cell Factories Pub Date : 2024-09-29 DOI:10.1186/s12934-024-02533-8
El-Sayed R El-Sayed, Gharieb S El-Sayyad, Sobhy S Abdel-Fatah, Ahmed I El-Batal, Filip Boratyński
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Abstract

Background: Antimicrobial resistance has emerged as a major global health threat, necessitating the urgent development of new antimicrobials through innovative methods to combat the rising prevalence of resistant microbes. With this view, we developed three novel nanoconjugates using microbial natural pigment for effective application against certain pathogenic microbes.

Results: A natural red pigment (RP) extracted from the endophyte Monascus ruber and gamma rays were applied to synthesize RP-ZnO, RP-CuO, and RP-MgO nanoconjugates. The synthesized nanoconjugates were characterized by different techniques to study their properties. The antimicrobial potential of these nanoconjugates was evaluated. Moreover, the antibiofilm, protein leakage, growth curve, and UV light irradiation effect of the synthesized nanoconjugates were also studied. Our results confirmed the nano-size, shape, and stability of the prepared conjugates. RP-ZnO, RP-CuO, and RP-MgO nanoconjugates showed broad antimicrobial potential against the tested bacterial and fungal pathogens. Furthermore, the RP-ZnO nanoconjugate possessed the highest activity, followed by the RP-CuO against the tested microbes. The highest % inhibition of biofilm formation by the RP-ZnO nanoconjugate. Membrane leakage of E. coli and S. aureus by RP-ZnO nanoconjugate was more effective than RP-MgO and RP-CuO nanoconjugates. Finally, UV light irradiation intensified the antibiotic action of the three nanoconjugates and RP-ZnO potential was greater than that of the RP-MgO, and RP-CuO nanoconjugates.

Conclusion: These findings pave the way for exploiting the synthesized nanoconjugates as potential materials in biomedical applications, promoting natural, green, and eco-friendly approaches.

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利用固态发酵法从内生菌 Monascus ruber 中提取金属氧化物和天然红色素的新型纳米共轭物。
背景:抗菌药耐药性已成为全球健康的一大威胁,因此迫切需要通过创新方法开发新的抗菌药,以应对耐药性微生物日益猖獗的问题。有鉴于此,我们利用微生物天然色素开发了三种新型纳米共轭物,以有效对抗某些病原微生物:结果:从内生菌 Monascus ruber 中提取的天然红色素(RP)和伽马射线被用于合成 RP-ZnO、RP-CuO 和 RP-MgO 纳米共轭物。通过不同的技术对合成的纳米共轭物进行了特性研究。对这些纳米共轭物的抗菌潜力进行了评估。此外,还研究了合成纳米共轭物的抗生物膜、蛋白质渗漏、生长曲线和紫外线照射效果。我们的结果证实了所制备共轭物的纳米尺寸、形状和稳定性。RP-ZnO、RP-CuO 和 RP-MgO 纳米共轭物对测试的细菌和真菌病原体具有广泛的抗菌潜力。此外,RP-ZnO 纳米共轭物对测试微生物的活性最高,其次是 RP-CuO。RP-ZnO 纳米共轭物对生物膜形成的抑制率最高。RP-ZnO 纳米共轭物对大肠杆菌和金黄色葡萄球菌的膜渗漏作用比 RP-MgO 和 RP-CuO 纳米共轭物更有效。最后,紫外线照射增强了三种纳米共轭物的抗生素作用,RP-ZnO 的潜力大于 RP-MgO 和 RP-CuO 纳米共轭物:这些发现为将合成的纳米共轭物作为生物医学应用的潜在材料铺平了道路,促进了天然、绿色和生态友好型方法的发展。
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来源期刊
Microbial Cell Factories
Microbial Cell Factories 工程技术-生物工程与应用微生物
CiteScore
9.30
自引率
4.70%
发文量
235
审稿时长
2.3 months
期刊介绍: Microbial Cell Factories is an open access peer-reviewed journal that covers any topic related to the development, use and investigation of microbial cells as producers of recombinant proteins and natural products, or as catalyzers of biological transformations of industrial interest. Microbial Cell Factories is the world leading, primary research journal fully focusing on Applied Microbiology. The journal is divided into the following editorial sections: -Metabolic engineering -Synthetic biology -Whole-cell biocatalysis -Microbial regulations -Recombinant protein production/bioprocessing -Production of natural compounds -Systems biology of cell factories -Microbial production processes -Cell-free systems
期刊最新文献
De novo biosynthesis of β-Arbutin in Komagataella phaffii based on metabolic engineering strategies. The influence of growth rate-controlling feeding strategy on the surfactin production in Bacillus subtilis bioreactor processes. Novel nanoconjugates of metal oxides and natural red pigment from the endophyte Monascus ruber using solid-state fermentation. Continuous production of chitooligosaccharides in a column reactor by the PUF-immobilized whole cell enzymes of Mucor circinelloides IBT-83. Correction: Enhancement of vitamin B6 production driven by omics analysis combined with fermentation optimization.
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