白色念珠菌在干燥表面形成的生物膜促进了对次氯酸钠的持久性和耐受性

IF 2.2 4区 医学 Q4 IMMUNOLOGY
Apmis Pub Date : 2025-04-07 DOI:10.1111/apm.70022
Alicia Ware, William Johnston, Christopher Delaney, Mark C. Butcher, Gordon Ramage, Lesley Price, John Butcher, Ryan Kean
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引用次数: 0

摘要

耳念珠菌是一种神秘的真菌病原体,最近被世界卫生组织提升为一种重要的优先病原体,与它在医院护理单位内引起疫情的能力有关,并通过环境持久性加以促进。我们研究了表型不同的金黄色葡萄球菌分离株对次氯酸钠(NaOCl)的敏感性,并利用干表面生物膜(DSB)模型和转录组学分析评估了生物膜在存活消毒中的作用。浮游细胞对NaOCl的敏感性进行了测试,使用12天DSB模型形成生物膜,使用活菌计数、生物量测定和显微镜进行评估。使用500-1,000 ppm的临床方案评估消毒效果,持续1-5分钟。对未处理的dsb进行RNA测序,与浮游细胞进行比较。发现分离株对浮游生物敏感,但生长出耐naocl的生物膜,在最高浓度下,活细胞仅减少2-4 log10。转录组学鉴定了DSB上调ABC转运蛋白和相对于浮游细胞的铁获取途径。我们的研究结果优化了DSB方案,其中金黄色葡萄球菌可以介导对NaOCl消毒的耐受性,表明这种有问题的酵母可以通过一种生活方式在环境中持续存在。从机制上讲,这是第一次表明小分子和铁运输途径的上调是环境生存的潜在促进因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dry Surface Biofilm Formation by Candida auris Facilitates Persistence and Tolerance to Sodium Hypochlorite

Dry Surface Biofilm Formation by Candida auris Facilitates Persistence and Tolerance to Sodium Hypochlorite

Candida auris is an enigmatic fungal pathogen, recently elevated as a critical priority group pathogen by the World Health Organisation, linked with its ability to cause outbreaks within nosocomial care units, facilitated through environmental persistence. We investigated the susceptibility of phenotypically distinct C. auris isolates to sodium hypochlorite (NaOCl), and evaluated the role of biofilms in surviving disinfection using a dry-surface biofilm (DSB) model and transcriptomic profiling. Planktonic cells were tested for susceptibility to NaOCl, with biofilm formation using the 12-day DSB model, assessed using viable counts, biomass assays and microscopy. Disinfection efficacy was assessed using clinical protocols of 500–1,000 ppm for 1–5 min. RNA sequencing was performed on untreated DSBs in comparison to planktonic cells. Isolates were found to be susceptible planktonically, but grew NaOCl-tolerant biofilms, with only 2–4 log10 reductions in viable cells observed at highest concentrations. Transcriptomics identified DSB upregulation of ABC transporters and iron acquisition pathways relative to planktonic cells. Our findings optimized a DSB protocol in which C. auris can mediate tolerance to NaOCl disinfection, suggesting a lifestyle through which this problematic yeast can environmentally persist. Mechanistically, it has been shown for the first time that upregulation of small-molecule and iron transport pathways are potential facilitators of environmental survival.

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来源期刊
Apmis
Apmis 医学-病理学
CiteScore
5.20
自引率
0.00%
发文量
91
审稿时长
2 months
期刊介绍: APMIS, formerly Acta Pathologica, Microbiologica et Immunologica Scandinavica, has been published since 1924 by the Scandinavian Societies for Medical Microbiology and Pathology as a non-profit-making scientific journal.
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