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Interlaboratory variability of caspofungin MICs for Candida spp. using CLSI and EUCAST methods: Should the clinical laboratory Be testing this agent?

  • A. Espinel-Ingroff
  • , M. C. Arendrup
  • , M. A. Pfaller
  • , L. X. Bonfietti
  • , B. Bustamante
  • , E. Canton
  • , E. Chryssanthou
  • , M. Cuenca-Estrella
  • , E. Dannaoui
  • , A. Fothergill
  • , J. Fuller
  • , P. Gaustad
  • , G. M. Gonzalez
  • , J. Guarro
  • , C. Lass-Flörl
  • , S. R. Lockhart
  • , J. F. Meis
  • , C. B. Moore
  • , L. Ostrosky-Zeichner
  • , T. Pelaez
  • S. R.B.S. Pukinskas, G. St-Germain, M. W. Szeszs, J. Turnidge
  • VCU Medical Center
  • Statens Serum Institut
  • University of Iowa
  • Instituto Adolfo Lutz
  • University Hospital la Fe
  • Karolinska University Hospital
  • Centro Nacional de Microbiologia
  • Institut Pasteur, Paris
  • University of Texas
  • University of Alberta
  • Rikshospitalet University Hospital
  • Universidad Autonóma de Nuevo León
  • Hospital Universitari Joan XXIII
  • Medical University Innsbruck
  • Centers for Disease Control and Prevention
  • Radboudumc
  • Manchester University NHS Foundation Trust
  • University of Texas Health Science Center at Houston
  • Hospital General Universitario Gregorio Marañón
  • Institut National de Santé Publique du Québec
  • University of Adelaide

Research output: Contribution to journalArticlepeer-review

208 Scopus citations

Abstract

Although Clinical and Laboratory Standards Institute (CLSI) clinical breakpoints (CBPs) are available for interpreting echinocandin MICs for Candida spp., epidemiologic cutoff values (ECVs) based on collective MIC data from multiple laboratories have not been defined. While collating CLSI caspofungin MICs for 145 to 11,550 Candida isolates from 17 laboratories (Brazil, Canada, Europe, Mexico, Peru, and the United States), we observed an extraordinary amount of modal variability (wide ranges) among laboratories as well as truncated and bimodal MIC distributions. The species-specific modes across different laboratories ranged from 0.016 to 0.5 μg/ml for C. albicans and C. tropicalis, 0.031 to 0.5 =g/ml for C. glabrata, and 0.063 to 1 =g/ml for C. krusei. Variability was also similar among MIC distributions for C. dubliniensis and C. lusitaniae. The exceptions were C. parapsilosis and C. guilliermondii MIC distributions, where most modes were within one 2-fold dilution of each other. These findings were consistent with available data from the European Committee on Antimicrobial Susceptibility Testing (EUCAST) (403 to 2,556 MICs) for C. albicans, C. glabrata, C. krusei, and C. tropicalis. Although many factors (caspofungin powder source, stock solution solvent, powder storage time length and temperature, and MIC determination testing parameters) were examined as a potential cause of such unprecedented variability, a single specific cause was not identified. Therefore, it seems highly likely that the use of the CLSI species-specific caspofungin CBPs could lead to reporting an excessive number of wild-type (WT) isolates (e.g., C. glabrata and C. krusei) as either non-WT or resistant isolates. Until this problem is resolved, routine testing or reporting of CLSI caspofungin MICs for Candida is not recommended; micafungin or anidulafungin data could be used instead.

Original languageEnglish
Pages (from-to)5836-5842
Number of pages7
JournalAntimicrobial Agents and Chemotherapy
Volume57
Issue number12
DOIs
StatePublished - Dec 2013

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