Focus on Synergistic Bacteriocin-Nanoparticles Enhancing Antimicrobial Activity Assay

Q4 Biochemistry, Genetics and Molecular Biology Mikrobiolohichnyi zhurnal Pub Date : 2023-12-21 DOI:10.15407/microbiolj85.06.095
M.E. Ahmed, A. Al-Awadi, A.F. Abbas
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Abstract

Antimicrobial resistance is one of the most significant threats to public health worldwide. As opposed to using traditional antibiotics, which are effective against diseases that are multidrug-resistant, it is vital to concentrate on the most innovative antibacterial compounds. These innate bacterial arsenals under the term «bacteriocins» refer to low-molecularweight, heat-stable, membrane-active, proteolytically degradable, and pore-forming cationic peptides. Due to their ability to attack bacteria, viruses, fungi, and biofilm, bacteriocins appear to be the most promising, currently accessible alternative for addressing the antimicrobial resistance (AMR) problem and minimizing the negative effects of antibiotics on the host’s microbiome. Nano-compounds have shown promise in a variety of applications, including antibacterial agents, drug delivery systems, food and drug packaging elements, functional food formulations, and many more. However, there are certain disadvantages in the chemical production of nanoparticles (NPs), such as toxicity and other negative impacts. Due to the dual action of biological sources combined with metallic NPs, the use of conjugated or green-synthesized nanoparticles has become more widespread during the past ten years. Recently, bacteriocin nanoparticles have emerged as a viable remedy and the most effective antibacterial agent in vitro to overcome some of these limitations.
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聚焦细菌素-纳米颗粒协同增强抗菌活性试验
抗菌药耐药性是全球公共卫生面临的最大威胁之一。与使用对多种药物产生抗药性的传统抗生素相比,集中使用最具创新性的抗菌化合物至关重要。细菌素 "是指低分子量、热稳定、膜活性、蛋白可降解、可形成孔隙的阳离子肽。由于细菌素具有攻击细菌、病毒、真菌和生物膜的能力,因此似乎是目前最有希望解决抗菌素耐药性(AMR)问题并最大限度减少抗生素对宿主微生物群负面影响的替代品。纳米化合物在抗菌剂、给药系统、食品和药品包装元件、功能性食品配方等多种应用领域都大有可为。然而,纳米粒子(NPs)的化学生产存在一些缺点,如毒性和其他负面影响。由于生物源与金属 NPs 的双重作用,近十年来,共轭或绿色合成纳米粒子的应用越来越广泛。最近,细菌素纳米粒子作为一种可行的疗法和最有效的体外抗菌剂出现,克服了上述一些局限性。
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来源期刊
Mikrobiolohichnyi zhurnal
Mikrobiolohichnyi zhurnal Medicine-Microbiology (medical)
CiteScore
0.70
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