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Diagnostic Profile

PNA FISH: present and future impact on patient management

Pages 231-236 | Published online: 09 Jan 2014

References

  • Kollef MH, Sherman G, Ward S, Fraser VJ. Inadequate antimicrobial treatment of infections: a risk factor for hospital mortality among critically ill patients. Chest115(2), 462–474 (1999).
  • Saubolle MA. Antimicrobial resistance: current status and future direction. Am. J. Rhinol.20(6), 667–671 (2006).
  • Cosgrove SE, Carmeli Y. The impact of antimicrobial resistance on health and economic outcomes. Clin. Infect. Dis.36(11), 1433–1437 (2003).
  • Schwaber MJ, Carmeli Y. Antimicrobial resistance and patient outcomes: the hazards of adjustment. Crit. Care.10(5), 164 (2006).
  • Hedrick TL, Sawyer RG. Health-care-associated infections and prevention. Surg. Clin. North Am.85(6), 1137–1152, ix (2005).
  • Pittet D. Infection control and quality health care in the new millennium. Am. J. Infect. Control.33(5), 258–267 (2005).
  • McGowan JE Jr. Minimizing antimicrobial resistance: the key role of the infectious diseases physician. Clin. Infect. Dis.38(7), 939–942 (2004).
  • Stender H. PNA FISH: an intelligent stain for rapid diagnosis of infectious diseases. Expert Rev. Mol. Diagn.3(5), 649–655 (2003).
  • Hartmann H, Stender H, Schafer A, Autenrieth IB, Kempf VA. Rapid identification of Staphylococcus aureus in blood cultures by a combination of fluorescence in situ hybridization using peptide nucleic acid probes and flow cytometry. J. Clin. Microbiol.43(9), 4855–4857 (2005).
  • Stender H, Oliveira K, Rigby S, Bargoot F, Coull J. Rapid detection, identification, and enumeration of Escherichia coli by fluorescence in situ hybridization using an array scanner. J. Microbiol. Methods45(1), 31–39 (2001).
  • Oliveira K, Haase G, Kurtzman C, Hyldig-Nielsen JJ, Stender H. Differentiation of Candida albicans and Candida dubliniensis by fluorescent in situ hybridization with peptide nucleic acid probes. J. Clin. Microbiol.39(11), 4138–4141 (2001).
  • Oliveira K, Procop GW, Wilson D, Coull J, Stender H. Rapid identification of Staphylococcus aureus directly from blood cultures by fluorescence in situ hybridization with peptide nucleic acid probes. J. Clin. Microbiol.40(1), 247–251 (2002).
  • Alexander BD, Ashley ED, Reller LB, Reed SD. Cost savings with implementation of PNA FISH testing for identification of Candida albicans in blood cultures. Diagn. Microbiol. Infect. Dis.54(4), 277–282 (2006).
  • Forrest GN, Mehta S, Weekes E, Lincalis DP, Johnson JK, Venezia RA. Impact of rapid in situ hybridization testing on coagulase-negative staphylococci positive blood cultures. J. Antimicrob. Chemother.58(1), 154–158 (2006).
  • Oliveira K, Brecher SM, Durbin A et al. Direct identification of Staphylococcus aureus from positive blood culture bottles. J. Clin. Microbiol.41(2), 889–891 (2003).
  • Tenover FC. Rapid detection and identification of bacterial pathogens using novel molecular technologies: infection control and beyond. Clin. Infect. Dis.44(3), 418–423 (2007).
  • Chapin K, Musgnug M. Evaluation of three rapid methods for the direct identification of Staphylococcus aureus from positive blood cultures. J. Clin. Microbiol.41(9), 4324–4327 (2003).
  • Forrest GN, Mankes K, Jabra-Rizk MA et al. Peptide nucleic acid fluorescence in situ hybridization-based identification of Candida albicans and its impact on mortality and antifungal therapy costs. J. Clin. Microbiol.44(9), 3381–3383 (2006).
  • Wilson DA, Joyce MJ, Hall LS et al. Multicenter evaluation of a Candida albicans peptide nucleic acid fluorescent in situ hybridization probe for characterization of yeast isolates from blood cultures. J. Clin. Microbiol.43(6), 2909–2912 (2005).
  • Toombs LS, Forrest GN, Weekes E, Lincalis DP, Johnson JK, Venezia RA. Impact of peptide nucleic acid (PNA) fluorescence in situ hybridization (FISH) for enterococcal blood stream infections. Presented at: Program and Abstracts Infectious Disease Society of America Meeting, Toronto, Canada, 12–15 October (2006) (Abstract 131).
  • Johnson JK, Roberts AA, Forrest GN, Lincalis DP, Venezia RA. Rapid identification of enterococcus species in positive blood cultures with therapeutic implications. Presented at: Program and Abstracts American Society of Microbiology Meeting, Orlando, FL, USA, 21–25 May (2006) (Abstract C-147).
  • Jabra-Rizk MA, Johnson JK, Forrest G, Mankes K, Meiller TF, Venezia RA. Prevalence of Candida dubliniensis fungemia at a large teaching hospital. Clin. Infect. Dis.41(7), 1064–1067 (2005).
  • Wu F, Della-Latta P, Addison R et al. Dual color PNA FISH assay for simultaneous identification of Candida albicans and Candida glabrata directly from positive blood culture bottles. Program and Abstracts Infectious Disease Society of America Meeting, October 12–15, Toronto, Canada, (2006) (Abstract LB-22).
  • Novak-Weekly S, LaForga M, Carey L, Frazier L. Validation of S. aureus PNA FISH, E. faecalis PNA FISH & C. albicans PNA FISH for rapid identification of positive blood culture bottles. Program and Abstracts American Society of Microbiology Meeting, Orlando, FL, USA, May 21–25 (2006) (Abstract C-007).
  • Kempf VA, Trebesius K, Autenrieth IB. Fluorescent in situ hybridization allows rapid identification of microorganisms in blood cultures. J. Clin. Microbiol.38(2), 830–838 (2000).
  • Lehtola MJ, Torvinen E, Miettinen IT, Keevil CW. Fluorescence in situ hybridization using peptide nucleic acid probes for rapid detection of Mycobacterium avium subsp. avium and Mycobacterium avium subsp. paratuberculosis in potable-water biofilms. Appl. Environ. Microbiol.72(1), 848–853 (2006).
  • Stender H, Lund K, Petersen KH et al. Fluorescence in situ hybridization assay using peptide nucleic acid probes for differentiation between tuberculous and nontuberculous mycobacterium species in smears of mycobacterium cultures. J. Clin. Microbiol.37(9), 2760–2765 (1999).
  • Radwanska M, Magez S, Perry-O’Keefe H et al. Direct detection and identification of African trypanosomes by fluorescence in situ hybridization with peptide nucleic acid probes. J. Clin. Microbiol.40(11), 4295–4297 (2002).
  • Peters RP, Savelkoul PH, Simoons-Smit AM, Danner SA, Vandenbroucke-Grauls CM, van Agtmael MA. Faster identification of pathogens in positive blood cultures by fluorescence in situ hybridization in routine practice. J. Clin. Microbiol.44(1), 119–123 (2006).
  • Kempf VA, Mandle T, Schumacher U, Schafer A, Autenrieth IB. Rapid detection and identification of pathogens in blood cultures by fluorescence in situ hybridization and flow cytometry. Int. J. Med. Microbiol.295(1), 47–55 (2005).
  • Fowler VG Jr, Boucher HW, Corey GR et al. Daptomycin versus standard therapy for bacteremia and endocarditis caused by Staphylococcus aureus. N. Engl. J. Med.355(7), 653–665 (2006).
  • Peters RP, Mohammadi T, Vandenbroucke-Grauls CM, Danner SA, van Agtmael MA, Savelkoul PH. Detection of bacterial DNA in blood samples from febrile patients: underestimated infection or emerging contamination? FEMS Immunol Med. Microbiol.42(2), 249–253 (2004).
  • Espy MJ, Uhl JR, Sloan LM et al. Real-time PCR in clinical microbiology: applications for routine laboratory testing. Clin. Microbiol. Rev.19(1), 165–256 (2006).
  • Cockerill FR III. Application of rapid-cycle real-time polymerase chain reaction for diagnostic testing in the clinical microbiology laboratory. Arch. Pathol. Lab. Med.127(9), 1112–1120 (2003).
  • Wren MW, Carder C, Coen PG, Gant V, Wilson AP. Rapid molecular detection of methicillin-resistant Staphylococcus aureus. J. Clin. Microbiol.44(4), 1604–1605 (2006).
  • Rand K, Houck H, Lawrence R. Real-time polymerase chain reaction detection of herpes simplex virus in cerebrospinal fluid and cost savings from earlier hospital discharge. J. Mol. Diagn.7(4), 511–516 (2005).
  • Sabat A, Malachowa N, Miedzobrodzki J, Hryniewicz W. Comparison of PCR-based methods for typing Staphylococcus aureus isolates. J. Clin. Microbiol.44(10), 3804–3807 (2006).
  • Grisold AJ, Kessler HH. Use of hybridization probes in a real-time PCR assay on the LightCycler for the detection of methicillin-resistant Staphylococcus aureus. Methods Mol. Biol.345, 79–89 (2006).
  • Desjardins M, Guibord C, Lalonde B, Toye B, Ramotar K. Evaluation of the IDI-MRSA assay for detection of methicillin-resistant Staphylococcus aureus from nasal and rectal specimens pooled in a selective broth. J. Clin. Microbiol.44(4), 1219–1223 (2006).
  • Huletsky A, Lebel P, Picard FJ et al. Identification of methicillin-resistant Staphylococcus aureus carriage in less than 1 hour during a hospital surveillance program. Clin. Infect. Dis.40(7), 976–981 (2005).
  • Ballard SA, Grabsch EA, Johnson PD, Grayson ML. Comparison of three PCR primer sets for identification of vanB gene carriage in feces and correlation with carriage of vancomycin-resistant enterococci: interference by vanB-containing anaerobic bacilli. Antimicrob. Agents Chemother.49(1), 77–81 (2005).
  • Thomas LC, Gidding HF, Ginn AN, Olma T, Iredell J. Development of a real-time Staphylococcus aureus and MRSA (SAM-) PCR for routine blood culture. J. Microbiol. Methods68(2), 296–302 (2007).
  • Raglio A, Rizzi M, Amer M, Mangia M, Luca MG, Goglio A. Sepsis diagnosis by real-time PCR (SeptiFast Kit, Roche Diagnostics): preliminary results and possible application. Presented at: Program and Abstracts from 16th European Congress of Clinical Microbiology and Infectious Diseases. Nice, France, 1–4 April (2006) (Abstract 215).
  • Lisby G, Westh H. Evaluation of SeptiFast – a new commercially available broad-range real-time PCR assay for detection of bacteria and fungi in blood. Program and Abstracts from 16th European Congress of Clinical Microbiology and Infectious Diseases. Nice, France, April 1–4 (2006) (Abstract 951).

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