This Article
Right arrow Full Text
Right arrow Full Text (PDF)
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrowReprints and Permissions
Right arrow Copyright Information
Right arrow Books from ASM Press
Right arrow MicrobeWorld
Citing Articles
Right arrow Citing Articles via HighWire
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by O'Sullivan, C. E.
Right arrow Articles by Walsh, T. J.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by O'Sullivan, C. E.
Right arrow Articles by Walsh, T. J.

 Previous Article  |  Next Article 

Journal of Clinical Microbiology, December 2003, p. 5676-5682, Vol. 41, No. 12
0095-1137/03/$08.00+0     DOI: 10.1128/JCM.41.12.5676-5682.2003

Development and Validation of a Quantitative Real-Time PCR Assay Using Fluorescence Resonance Energy Transfer Technology for Detection of Aspergillus fumigatus in Experimental Invasive Pulmonary Aspergillosis

Cathal E. O'Sullivan, Miki Kasai, Andrea Francesconi, Vidmantas Petraitis, Ruta Petraitiene, Amy M. Kelaher, Alia A. Sarafandi, and Thomas J. Walsh*

Immunocompromised Host Section, Pediatric Oncology Branch, National Cancer Institute, National Institutes of Health, Bethesda, Maryland

Received 17 March 2003/ Returned for modification 11 July 2003/ Accepted 20 September 2003

Invasive pulmonary aspergillosis (IPA) is a frequently fatal infection in immunocompromised patients that is difficult to diagnose. Present methods for detection of Aspergillus spp. in bronchoalveolar lavage (BAL) fluid and in tissue vary in sensitivity and specificity. We therefore developed an A. fumigatus-specific quantitative real-time PCR-based assay utilizing fluorescent resonance energy transfer (FRET) technology. We compared the assay to quantitative culture of BAL fluid and lung tissue in a rabbit model of experimental IPA. Using an enzymatic and high-speed mechanical cell wall disruption protocol, DNA was extracted from samples of BAL fluid and lung tissues from noninfected and A. fumigatus-infected rabbits. A unique primer set amplified internal transcribed spacer regions (ITS) 1 and 2 of the rRNA operon. Amplicon was detected using FRET probes targeting a unique region of ITS1. Quantitation of A. fumigatus DNA was achieved by use of external standards. The presence of PCR inhibitors was determined by use of a unique control plasmid. The analytical sensitivity of the assay was <=10 copies of target DNA. No cross-reactivity occurred with other medically important filamentous fungi. The assay results correlated with pulmonary fungal burden as determined by quantitative culture (r = 0.72, Spearman rank correlation; P <= 0.0001). The mean number of genome equivalents detected in untreated animals was 3.86 log10 (range, 0.86 to 6.39 log10) in tissue. There was a 3.53-log10 mean reduction of A. fumigatus genome equivalents in animals treated with amphotericin B (AMB) (95% confidence interval, 3.38 to 3.69 log10; P <= 0.0001), which correlated with the reduction of residual fungal burden in lung tissue measured in terms of log10 CFU/gram. The enhanced quantitative sensitivity of the real-time PCR assay was evidenced by detection of A. fumigatus genome in infarcted culture-negative lobes, by a greater number of mean genome equivalents compared to the number of CFU per gram in tissue and BAL fluid, and by superior detection of therapeutic response to AMB in BAL fluid compared to culture. This real-time PCR assay using FRET technology is highly sensitive and specific in detecting A. fumigatus DNA from BAL fluid and lung tissue in experimental IPA.


* Corresponding author. Mailing address: Immunocompromised Host Section, Pediatric Oncology Branch, National Cancer Institute, Bldg. 10, Rm. 13N-240, Bethesda, MD 20892. Phone: (301) 402-0023. Fax: (301) 402-0575. E-mail: walshtj{at}mail.nih.gov.


Journal of Clinical Microbiology, December 2003, p. 5676-5682, Vol. 41, No. 12
0095-1137/03/$08.00+0     DOI: 10.1128/JCM.41.12.5676-5682.2003




This article has been cited by other articles:

  • Hummel, M., Spiess, B., Roder, J., von Komorowski, G., Durken, M., Kentouche, K., Laws, H. J., Morz, H., Hehlmann, R., Buchheidt, D. (2009). Detection of Aspergillus DNA by a nested PCR assay is able to improve the diagnosis of invasive aspergillosis in paediatric patients. J Med Microbiol 58: 1291-1297 [Abstract] [Full Text]  
  • Petraitis, V., Petraitiene, R., Hope, W. W., Meletiadis, J., Mickiene, D., Hughes, J. E., Cotton, M. P., Stergiopoulou, T., Kasai, M., Francesconi, A., Schaufele, R. L., Sein, T., Avila, N. A., Bacher, J., Walsh, T. J. (2009). Combination Therapy in Treatment of Experimental Pulmonary Aspergillosis: In Vitro and In Vivo Correlations of the Concentration- and Dose- Dependent Interactions between Anidulafungin and Voriconazole by Bliss Independence Drug Interaction Analysis. Antimicrob. Agents Chemother. 53: 2382-2391 [Abstract] [Full Text]  
  • Kasai, M., Harrington, S. M., Francesconi, A., Petraitis, V., Petraitiene, R., Beveridge, M. G., Knudsen, T., Milanovich, J., Cotton, M. P., Hughes, J., Schaufele, R. L., Sein, T., Bacher, J., Murray, P. R., Kontoyiannis, D. P., Walsh, T. J. (2008). Detection of a Molecular Biomarker for Zygomycetes by Quantitative PCR Assays of Plasma, Bronchoalveolar Lavage, and Lung Tissue in a Rabbit Model of Experimental Pulmonary Zygomycosis. J. Clin. Microbiol. 46: 3690-3702 [Abstract] [Full Text]  
  • Francesconi, A., Kasai, M., Harrington, S. M., Beveridge, M. G., Petraitiene, R., Petraitis, V., Schaufele, R. L., Walsh, T. J. (2008). Automated and Manual Methods of DNA Extraction for Aspergillus fumigatus and Rhizopus oryzae Analyzed by Quantitative Real-Time PCR. J. Clin. Microbiol. 46: 1978-1984 [Abstract] [Full Text]  
  • Schabereiter-Gurtner, C., Selitsch, B., Rotter, M. L., Hirschl, A. M., Willinger, B. (2007). Development of Novel Real-Time PCR Assays for Detection and Differentiation of Eleven Medically Important Aspergillus and Candida Species in Clinical Specimens. J. Clin. Microbiol. 45: 906-914 [Abstract] [Full Text]  
  • Bowman, J. C., Abruzzo, G. K., Flattery, A. M., Gill, C. J., Hickey, E. J., Hsu, M. J., Nielsen Kahn, J., Liberator, P. A., Misura, A. S., Pelak, B. A., Wang, T. C., Douglas, C. M. (2006). Efficacy of Caspofungin against Aspergillus flavus, Aspergillus terreus, and Aspergillus nidulans. Antimicrob. Agents Chemother. 50: 4202-4205 [Abstract] [Full Text]  
  • Francesconi, A., Kasai, M., Petraitiene, R., Petraitis, V., Kelaher, A. M., Schaufele, R., Hope, W. W., Shea, Y. R., Bacher, J., Walsh, T. J. (2006). Characterization and Comparison of Galactomannan Enzyme Immunoassay and Quantitative Real-Time PCR Assay for Detection of Aspergillus fumigatus in Bronchoalveolar Lavage Fluid from Experimental Invasive Pulmonary Aspergillosis.. J. Clin. Microbiol. 44: 2475-2480 [Abstract] [Full Text]  
  • Procop, G. W. (2006). Evaluation of Molecular Diagnostic Assays for Fungal Infections. J. Mol. Diagn. 8: 297-298 [Full Text]  
  • Clemons, K. V., Espiritu, M., Parmar, R., Stevens, D. A. (2006). Assessment of the paradoxical effect of caspofungin in therapy of candidiasis.. Antimicrob. Agents Chemother. 50: 1293-1297 [Abstract] [Full Text]  
  • Espy, M. J., Uhl, J. R., Sloan, L. M., Buckwalter, S. P., Jones, M. F., Vetter, E. A., Yao, J. D. C., Wengenack, N. L., Rosenblatt, J. E., Cockerill, F. R. III, Smith, T. F. (2006). Real-Time PCR in Clinical Microbiology: Applications for Routine Laboratory Testing. Clin. Microbiol. Rev. 19: 165-256 [Abstract] [Full Text]  
  • Kasai, M., Francesconi, A., Petraitiene, R., Petraitis, V., Kelaher, A. M., Kim, H.-s., Meletiadis, J., Sein, T., Bacher, J., Walsh, T. J. (2006). Use of Quantitative Real-Time PCR To Study the Kinetics of Extracellular DNA Released from Candida albicans, with Implications for Diagnosis of Invasive Candidiasis. J. Clin. Microbiol. 44: 143-150 [Abstract] [Full Text]  
  • Halliday, C., Wu, Q. X., James, G., Sorrell, T. (2005). Development of a Nested Qualitative Real-Time PCR Assay To Detect Aspergillus Species DNA in Clinical Specimens. J. Clin. Microbiol. 43: 5366-5368 [Abstract] [Full Text]  
  • Singh, G., Imai, J., Clemons, K. V., Stevens, D. A. (2005). Efficacy of Caspofungin against Central Nervous System Aspergillus fumigatus Infection in Mice Determined by TaqMan PCR and CFU Methods. Antimicrob. Agents Chemother. 49: 1369-1376 [Abstract] [Full Text]  
  • de Aguirre, L., Hurst, S. F., Choi, J. S., Shin, J. H., Hinrikson, H. P., Morrison, C. J. (2004). Rapid Differentiation of Aspergillus Species from Other Medically Important Opportunistic Molds and Yeasts by PCR-Enzyme Immunoassay. J. Clin. Microbiol. 42: 3495-3504 [Abstract] [Full Text]