Dual-functional molecule 3c targeting CYP24A1-mediated 25-hydroxyvitamin D metabolism and microbial biofilms overcomes mixed vaginal infections

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-10-16 DOI:10.1039/D5RA06803G
Xiaojie Wang, Ye Liu, Chuan Sun, Hemin Li and Jing Xu
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Abstract

In the context of clinical treatment for mixed vaginal infections, which pose dual challenges of biofilm resistance and immune microenvironment imbalance, this study synthesized 12 “triazole–Schiff base” hybrid compounds using previously reported synthetic routes. This design was guided by the core mechanism in which CYP24A1 enzyme overexpression in the vitamin D–vitamin D receptor immunoregulatory pathway leads to degradation of active vitamin D. Among them, compound 3c exhibited excellent broad-spectrum antibacterial and antifungal activity (MIC = 16 μg mL−1), low cytotoxicity, and significant inhibition and eradication of Candida albicans biofilms. Mechanistic studies revealed that the compound possesses both membrane-targeting disruptive effects and CYP24A1 inhibitory activity. At the enzymatic level, compound 3c achieved 32% inhibition of CYP24A1 at 100 μM. In cellular models, it did not affect basal CYP24A1 mRNA expression at 10−7 M, but when combined with 1,25(OH)2D3, it up-regulated CYP24A1 mRNA levels approximately twofold. Further LC-MS/MS analysis confirmed that the addition of 10−7 M of compound 3c significantly slowed the metabolic clearance of 1,25(OH)2D3 in HEK293T cells, maintaining an average concentration of 495 pM after 24 h. In summary, compound 3c employs a multi-target synergistic mechanism of “direct antimicrobial activity–immunomodulation–biofilm penetration” to effectively overcome biofilm-mediated resistance and improve the local immune microenvironment, thus offering a promising lead compound with clinical translational potential for addressing the therapeutic challenges in mixed infections.

Abstract Image

靶向cyp24a1介导的25-羟基维生素D代谢和微生物生物膜的双功能分子3c克服了混合性阴道感染
针对混合阴道感染存在生物膜耐药性和免疫微环境失衡双重挑战的临床治疗背景,本研究采用已有报道的合成路线合成了12种“三唑-希夫碱”杂化化合物。本设计以维生素D -维生素D受体免疫调节通路中CYP24A1酶过表达导致活性维生素D降解的核心机制为指导,其中化合物3c具有良好的广谱抗菌和抗真菌活性(MIC = 16 μg mL−1),细胞毒性低,对白色念珠菌生物膜具有明显的抑制和清除作用。机制研究表明,该化合物具有膜靶向破坏作用和CYP24A1抑制活性。在酶促水平上,化合物3c在100 μM下对CYP24A1的抑制达到32%。在细胞模型中,在10−7 M时,它不影响CYP24A1 mRNA的基础表达,但当与1,25(OH)2D3联合使用时,它将CYP24A1 mRNA水平上调了约两倍。进一步LC-MS/MS分析证实,添加10−7 M的化合物3c显著减缓了HEK293T细胞中1,25(OH)2D3的代谢清除,24 h后平均浓度维持在495 pM。综上所述,化合物3c采用“直接抑菌活性-免疫调节-生物膜渗透”的多靶点协同机制,有效克服了生物膜介导的耐药性,改善了局部免疫微环境。因此,为解决混合感染的治疗挑战提供了一种具有临床转化潜力的有前途的先导化合物。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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