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烟酰胺的抗菌功效及其通过微生物细胞周期停滞的作用模式。

Niacinamide Antimicrobial Efficacy and Its Mode of Action via Microbial Cell Cycle Arrest.

作者信息

Ziklo Noa, Bibi Maayan, Sinai Lior, Salama Paul

机构信息

Innovation Department, Sharon Personal Care Ltd., Eli Horovitz St. 4, Rehovot 7608810, Israel.

出版信息

Microorganisms. 2024 Aug 2;12(8):1581. doi: 10.3390/microorganisms12081581.

Abstract

Niacinamide is a versatile compound widely used in the personal care industry for its ample skin benefits. As a precursor to nicotinamide adenine dinucleotide (NAD+), essential for ATP production and a substrate for poly-ADP-ribose polymerase-1 (PARP-1), studies have highlighted its roles in DNA repair, cellular stress mechanisms, and anti-aging benefits. Niacinamide was also studied for its antimicrobial activity, particularly in the context of host-infection via host immune response, yet its direct antimicrobial activity and the mechanisms of action remain unclear. Its multifunctionality makes it an appealing bioactive molecule for skincare products as well as a potential preservative solution. This study explores niacinamide's antimicrobial mode of action against four common cosmetic pathogens. Our findings indicate that niacinamide is causing microbial cell cycle arrest; while cells were found to increase their volume and length under treatment to prepare for cell division, complete separation into two daughter cells was prevented. Fluorescence microscopy revealed expanded chromatin, alongside a decreased RNA expression of the DNA-binding protein gene, . Finally, niacinamide was found to directly interact with DNA, hindering successful amplification. These unprecedented findings allowed us to add a newly rationalized preservative facete to the wide range of niacinamide multi-functionality.

摘要

烟酰胺是一种用途广泛的化合物,因其对皮肤有诸多益处而在个人护理行业中广泛使用。作为烟酰胺腺嘌呤二核苷酸(NAD+)的前体,NAD+对ATP生成至关重要且是聚ADP核糖聚合酶-1(PARP-1)的底物,研究突出了其在DNA修复、细胞应激机制和抗衰老益处方面的作用。烟酰胺的抗菌活性也得到了研究,特别是在宿主通过免疫反应感染的背景下,但其直接抗菌活性和作用机制仍不清楚。其多功能性使其成为护肤品中一种有吸引力的生物活性分子以及一种潜在的防腐解决方案。本研究探讨了烟酰胺对四种常见化妆品病原体的抗菌作用模式。我们的研究结果表明,烟酰胺会导致微生物细胞周期停滞;在处理过程中,细胞体积和长度增加以准备细胞分裂,但阻止了完全分离成两个子细胞。荧光显微镜显示染色质扩张,同时DNA结合蛋白基因的RNA表达降低。最后,发现烟酰胺直接与DNA相互作用,阻碍成功扩增。这些前所未有的发现使我们能够在烟酰胺广泛的多功能性中新增一个经过合理阐释的防腐方面的特性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f6f/11356291/1b8ee05fda6f/microorganisms-12-01581-g001.jpg

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