Institute for Medical Microbiology and German National Reference Centre for Systemic Mycoses, University Medical Centre Göttingen, Kreuzbergring 57, Göttingen, Germany.
Clin Microbiol Infect. 2011 Sep;17(9):1359-65. doi: 10.1111/j.1469-0691.2010.03398.x. Epub 2010 Dec 3.
The key to therapeutic success with yeast infections is an early onset of antifungal treatment with an appropriate drug regimen. To do this, yeast species identification is necessary, but conventional biochemical and morphological approaches are time-consuming. The recent arrival of biophysical methods, such as matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF MS), in routine diagnostic laboratories holds the promise of significantly speeding up this process. In this study, two commercially available MALDI-TOF MS species identification systems were evaluated for application in clinical diagnostics, using a geographically diverse collection of 1192 clinical yeast and yeast-like isolates. The results were compared with those of the classical differentiation scheme based on microscopic and biochemical characteristics. For 95.1% of the isolates, all three procedures consistently gave the correct species identification, but the rate of misclassification was greatly reduced in both MALDI-TOF MS systems. Furthermore, several closely related species (e.g. Candida orthopsilosis/metapsilosis/parapsilosis or Candida glabrata/bracarensis) could be resolved by both MALDI-TOF MS systems, but not by the biochemical approach. A significant advantage of MALDI-TOF MS over biochemistry in the recognition of isolates novel to the system was observed. Although both MALDI-TOF MS systems employed different approaches in the database structure and showed different susceptibilities to errors in database entries, these were negligible in terms of clinical usefulness. The time-saving benefit of MALDI-TOF MS over biochemical identification will substantially improve fungal diagnostics and patient treatment.
治疗酵母菌感染的关键在于早期使用适当的药物治疗方案进行抗真菌治疗。为此,需要确定酵母菌的种类,但传统的生化和形态学方法耗时较长。最近,生物物理方法(如基质辅助激光解吸电离飞行时间质谱法(MALDI-TOF MS))已进入常规诊断实验室,有望大大加快这一过程。在这项研究中,我们评估了两种市售的 MALDI-TOF MS 物种鉴定系统在临床诊断中的应用,使用了来自不同地理区域的 1192 种临床酵母菌和酵母样分离株的集合。将结果与基于显微镜和生化特征的经典鉴别方案进行了比较。对于 95.1%的分离株,所有三种方法都能始终如一地给出正确的物种鉴定,但两种 MALDI-TOF MS 系统都大大降低了错误分类的比率。此外,两种 MALDI-TOF MS 系统还可以分辨出一些密切相关的物种(例如近平滑假丝酵母/中间假丝酵母/副假丝酵母或光滑假丝酵母/布拉氏假丝酵母),但生化方法无法分辨。与生化方法相比,MALDI-TOF MS 在识别系统中新的分离株方面具有显著优势。尽管两种 MALDI-TOF MS 系统在数据库结构上采用了不同的方法,并且对数据库条目的错误敏感性不同,但在临床应用方面可以忽略不计。与生化鉴定相比,MALDI-TOF MS 节省时间的优势将大大改善真菌诊断和患者治疗。