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念珠菌生物膜耐药性。

Candida biofilm resistance.

作者信息

Mukherjee Pranab K, Chandra Jyotsna

机构信息

Department of Dermatology, Center for Medical Mycology, Case Western Reserve University, 11100 Euclid Avenue, LKS-5028 Cleveland, OH 44106-5028, USA.

出版信息

Drug Resist Updat. 2004 Aug-Oct;7(4-5):301-9. doi: 10.1016/j.drup.2004.09.002.

Abstract

Device-related infections in most nosocomial diseases can be traced to the formation of biofilms (microbial communities encased within polysaccharide-rich extracellular matrix) by pathogens on surfaces of these devices. Candida species are the most common fungi isolated from these infections, and biofilms formed by these fungal organisms are associated with drastically enhanced resistance against most antimicrobial agents. This enhanced resistance contributes to the persistence of this fungus despite antifungal therapy. Candida biofilms exhibit enhanced resistance against most antifungal agents, except echinocandins and lipid formulations of AmB. The expression of drug efflux pumps during the early phase of biofilm formation and alterations in membrane sterol composition contribute to resistance of these biofilms against azoles. Metabolic dormancy and ECM do not appear to contribute to resistance, although in a mixed-species biofilm, ECM does retard the diffusion of drugs across biofilm. These multifactorial mechanisms of resistance in fungal biofilms constitute a broad-spectrum defense that is effective against many types of antifungal agents, and represent a common theme present across microbial biofilms.

摘要

大多数医院感染中与设备相关的感染可追溯到病原体在这些设备表面形成生物膜(包裹在富含多糖的细胞外基质中的微生物群落)。念珠菌属是从这些感染中分离出的最常见真菌,这些真菌形成的生物膜与对大多数抗菌剂的抗性大幅增强有关。这种增强的抗性导致尽管进行了抗真菌治疗,这种真菌仍持续存在。念珠菌生物膜对大多数抗真菌剂具有增强的抗性,但棘白菌素和两性霉素B的脂质制剂除外。生物膜形成早期药物外排泵的表达以及膜甾醇组成的改变导致这些生物膜对唑类产生抗性。代谢休眠和细胞外基质似乎与抗性无关,尽管在混合物种生物膜中,细胞外基质确实会阻碍药物在生物膜中的扩散。真菌生物膜中这些多因素抗性机制构成了一种对多种类型抗真菌剂有效的广谱防御,并且代表了微生物生物膜中普遍存在的一个共同特征。

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