Have a personal or library account? Click to login
Atomic force microscopy and scanning electron microscopy as alternative methods of early identification of pathogens causing catheter-related bloodstream infections of patients in ICU Cover

Atomic force microscopy and scanning electron microscopy as alternative methods of early identification of pathogens causing catheter-related bloodstream infections of patients in ICU

Open Access
|May 2022

References

  1. Bouza E, Alvarado N, Alcalá L, Pérez MJ, Rincón C, Muñoz P. A randomized and prospective study of 3 procedures for the diagnosis of catheter-related blood stream infection without catheter withdrawal. Clin Infect Dis. 2007; 44: 820–826.
  2. Braun E, Hussein K, Geffen Y, Rabino G, Bar-Lavie Y, Paul M. Predominance of Gram-negative bacilli among patients with catheter-related bloodstream infections. Clin Microbiol Infect. 2014; 20: 627–629.
  3. García X, Sabatier C, Ferrer R, Fontanas D, Duarte M, Colomina M, Artigos A, Valles J. Differential time to positivity of blood cultures: A valid method for diagnosing catheter-related bloodstream infections in the intensive care unit. Med Intensiva. 2012; 36: 169–176.
  4. García-Vázquez E, Murcia-Payá J, Canteras M, Gómez J. Influence of a hygiene promotion programme on infection control in an intensive-care unit. Clin Microbiol Infect. 2011;17: 894–900.
  5. Hajjej Z, Nasri M, Sellami W, Gharsallah H, Labben I, Ferjani M. Incidence, risk factors and microbiology of central vascular catheter-related bloodstream infection in an intensive care unit. J Infect Chemother. 2014; 20: 163–168.
  6. Huang EY, Chen C, Abdullah F, Aspelund G, Barnhart DC, Calkins CM, Cowles RA, Downard CD, Goldin AB, Lee SL, et al. Strategies for the prevention of central venous catheter infections: An American Pediatric Surgical Association Outcomes and Clinical Trials Committee systematic review. J Pediatr Surg. 2011; 46: 2000–2011.
  7. Reigadas E, Rodrıguez-Creixems M, Guembe M, Sanchez-Carrillo1 C, Martın-Rabadan P, Bouza E. Catheter-related bloodstream infection caused by Enterococcus spp. Clin Microbiol Infect. 2013; 19: 457–461.
  8. Bambauer R, Mestres P, Schiel R, Schneidewind-Muller JM, Bambauer S, Sioshansi P. Large bore catheters with surface treatments versus untreated catheters for blood access. J Vascular Access. 2001; 2: 97–105.
  9. Bambauer R, Schiel R, Mestres P, Klinkmann J, Sioshansi P. Scanning electron microscopic investigation of catheters for blood access. Blood Purif. 1996; 14: 249–256.
  10. Bambauer R, Schiel R, Mestres P, Sioshansi P. Scanning electron microscopic investigations of surface treated large-bore catheters used for extracorporeal detoxification methods. Int J Artif Organs. 1995; 18: 326–331.
  11. Bustos C, Aguinaga A, Carmona-Torre F, Del Pozo JL. Long-term catheterization: current approaches in the diagnosis and treatment of port-related infections. Infect Drug Resist. 2014; 7: 25–35.
  12. Dorobantu LS, Goss GG, Burrell RE. Atomic force microscopy: A nanoscopic view of microbial cell surfaces. Micron. 2021; 43: 1312–1322.
  13. Lombardi S, Scutell M, Felice V, Di Campli E, Di Giulio M, Cellini L. Central vascular catheter infections in a Hospital of Central Italy. New Microbiol. 2014; 37: 41–50.
  14. Mirijello A, Impagnatiello M, Zaccone V, Ventyra G, Pompa L, Addolorato G, Landolfi R. Internal Medicine Sepsis Study Group. Catheter-related blood stream infections by opportunistic pathogens in immuno-compromised hosts. Eur Rev Med Pharmacol Sci. 2015; 19: 2440–2445.
  15. Chen XX, Lo YC, Su LH, Chang CL. Investigation of the case numbers of catheter-related bloodstream infection overestimated by the central line-associated bloodstream infection surveillance definition. J Microbiol Immunol Infect. 2015; 48: 625–631.
  16. Horcas I, Fernández R, Gómez-Rodriguez JM, Colchero J, Gómez-Herrero J, Baro AM. WSXM: A software for scanning probe microscopy and a tool for nanotechnology. Rev Sci Instrum. 2007; 78: 013705.
  17. Zhang L, Gowardmann J, Morrison M, Runnegar N, Rickard CM. Microbial biofilms associated with intravascular catheter-related bloodstream infections in adult intensive care patients. Eur J Clin Microbiol Infect Dis. 2016; 35: 201–205.
  18. Bambauer R, Mestres P, Schiel R, Klinkmann J, Sioshansi P. Surface-treated catheters with ion beam-based process evaluation in rats. Artif Organs. 1997; 21: 1039–1041.
  19. Gominet M, Compain F, Beloin C, Lebeaux D. Central venous catheters and biofilms: Where do we stand in 2017. APIMS. 2017; 125: 365–375.
  20. Lorente L, Martín MM, Vidal P, Rebollo S, Ostabal MI, Solé-Violán J. Working Group on Catheter Related Infection Suspicion Management of GTEIS/SEMICYUC Should central venous catheter be systematically removed in patients with suspected catheter related infection? Crit Care. 2014; 18: 564.
  21. Marang-van de Mheen PJ, van Bodegom-Vos L. Meta-analysis of the central line bundle for preventing catheter-related infections: a case study in appraising the evidence in quality improvement. BMJ Qual Saf. 2016; 25: 118–129.
  22. Wu S, Ren S, Zhao H, Jin H, Xv L, Qian S, Wang S. Risk factors for central venous catheter–related bloodstream infections after gastrointestinal surgery. Am J Infect Control. 2017; 45: 549–550.
  23. Pérez-Zárate P, Aragón-Piña A, Soria-Guerra RE Gonzales-Amaro AM, Perez-Urizar J, Perez-Gonzales L, Martinez-Gutierrez F. Risk factors and biofilm detection on central venous catheters of patients attended at tertiary hospital. Micron. 2015; 78: 33–39.
  24. Carrassi A, Abati S, Santarelli G. The role of scanning electron microscopy in periodontal research. Scanning Microsc. 1988; 2: 1123–1138.
  25. Van Der Hofstadt M, Hüttener M, Juárez A, Gomila G. Nanoscale imaging of the growth and division of bacterial cells on planar substrates with the atomic force microscope Ultramicroscopy. 2015; 154: 29–36.
  26. Variola F. Atomic force microscopy in biomaterials surface science. Phys Chem Chem Phys. 2015; 17: 2950–2959.
  27. Verbeke F, Haug U, Dhondt A, Beck W, Schnell A,, Dietrich R, Deppisch R, Vonholder R. The role of polymer surface degradation and barium sulphate release in the pathogenesis of catheter-related infection. Nephrol Dial Transplant. 2010; 25: 1207–1213.
  28. Webb HK, Truong VK, Hasan J, Crawford RJ, Ivanova EP. Physico-mechanical characterization of cells using atomic force microscopy. J Microbiol Methods. 2011; 86: 131–139.
  29. Toribio A, Ferrero MA, Rodríguez-Aparicio L, Martínez-Blanco H. Evaluation of bacterial adhesion in exposed orbital implants using electron microscopy and microbiological culture. Esp Oftalmol. 2019; 94: 609–613.
  30. Vuotto C, Donelli G. Field emission scanning electron microscopy of biofilm-growing bacteria involved in nosocomial infections. Methods Mol Biol. 2014; 1147: 73–84.
  31. Theegarten D, Mogilevski G, Anhenn O, Stamatis G, Jaeschock R, Morgenroth K. The role of chlamydia in the pathogenesis of pulmonary emphysema. Electron microscopy and immunofluorescence reveal corresponding findings as in atherosclerosis. Virchows Archiv. 2000; 437: 190–193.
  32. Noda T. Electron microscopy of Ebola virus-infected cells. Methods Mol Biol. 2017; 1628: 243–250.
Language: English
Page range: 157 - 164
Submitted on: Jan 16, 2021
|
Accepted on: Dec 10, 2021
|
Published on: May 13, 2022
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2022 Anna Kluzik, Hanna Tomczak, Marek Nowicki, Tomasz Koszel, Alicja Bartkowska-Śniatkowska, Krzysztof Kusza, Małgorzata Grześkowiak, published by Hirszfeld Institute of Immunology and Experimental Therapy
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.