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通过由孟加拉玫瑰红和(乙烯基苄基)三乙铵聚阳离子衍生物构建的超分子光敏剂实现“按需”抗菌光动力活性。

"On-Demand" Antimicrobial Photodynamic Activity through Supramolecular Photosensitizers Built with Rose Bengal and (Vinylbenzyl)triethylammomium Polycation Derivatives.

作者信息

Vera Cecilia, Gallucci Mauro N, Marioni Juliana, Sosa Morales Marcelo C, Martino Debora M, Nuñez Montoya Susana, Borsarelli Claudio D

机构信息

Instituto de Bionanotecnolgía del NOA (INBIONATEC), CONICET, Universidad Nacional de Santiago del Estero (UNSE), RN9, km 1125, Santiago del Estero G4206XCP, Argentina.

CONICET, Instituto Multidisciplinario de Biología Vegetal (IMBIV), Cordoba X5000HUA, Argentina.

出版信息

Bioconjug Chem. 2022 Mar 16;33(3):463-472. doi: 10.1021/acs.bioconjchem.1c00596. Epub 2022 Feb 9.

Abstract

The antimicrobial photodynamic activity (aPDA) in fungal and bacterial strains of supramolecular adducts formed between the anionic photosensitizer (PS) Rose Bengal (RB) and aromatic polycations derived from (-vinylbenzyl)triethylammonium chloride was evaluated. Stable supramolecular adducts with dissociation constants ≈ 5 μM showed photosensitizing properties suitable for generating singlet oxygen (Φ = 0.5 ± 0.1) with the added advantage of improving the photostability of the xanthenic dye. However, the aPDA of both free and supramolecular RB was highly dependent on the type of microorganism treated, indicating the importance of specific interactions between the different cell wall structures of the microbe and the PSs. Indeed, in the case of Gram-positive , the aPDA of molecular and supramolecular PSs was highly effective. Instead, in the case of Gram-negative only the RB:polycation adducts showed aPDA, while RB alone was inefficient, but in the case of the opposite behavior was observed. Therefore, the present results indicate the potential of supramolecular chemistry to obtain aPDA depending on the target microbe and the PS properties.

摘要

评估了阴离子光敏剂(PS)孟加拉玫瑰红(RB)与由(-乙烯基苄基)三乙基氯化铵衍生的芳族聚阳离子之间形成的超分子加合物在真菌和细菌菌株中的抗菌光动力活性(aPDA)。解离常数约为5μM的稳定超分子加合物显示出适合产生单线态氧(Φ = 0.5±0.1)的光敏特性,还具有提高呫吨染料光稳定性的额外优势。然而,游离和超分子RB的aPDA高度依赖于所处理的微生物类型,这表明微生物不同细胞壁结构与PS之间特定相互作用的重要性。实际上,对于革兰氏阳性菌,分子和超分子PS的aPDA非常有效。相反,对于革兰氏阴性菌,只有RB:聚阳离子加合物显示出aPDA,而单独的RB效率低下,但对于[此处原文缺失相关细菌类型]则观察到相反的行为。因此,目前的结果表明超分子化学根据目标微生物和PS特性获得aPDA的潜力。

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