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Chapter 10 - Surveillance: An Overview

from Section 2 - Infection Prevention Basics

Published online by Cambridge University Press:  02 April 2018

Ebbing Lautenbach
Affiliation:
University of Pennsylvania School of Medicine
Preeti N. Malani
Affiliation:
University of Michigan, Ann Arbor
Keith F. Woeltje
Affiliation:
Washington University School of Medicine, St Louis
Jennifer H. Han
Affiliation:
University of Pennsylvania School of Medicine
Emily K. Shuman
Affiliation:
University of Michigan, Ann Arbor
Jonas Marschall
Affiliation:
Washington University School of Medicine, St Louis
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Print publication year: 2018

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References

Langmuir, AD. The surveillance of communicable diseases of national importance. N Engl J Med 1963;268: 182192.Google Scholar
TM. P. Surveillance, reporting and the use of computers. In: Wenzel, RP, ed. Prevention and Control of Nosocomial Infections. Baltimore, MD: Williams and Williams; 1997: 127162.Google Scholar
Haley, RW, Quade, D, Freeman, HE, Bennett, JV. The SENIC Project: study on the efficacy of nosocomial infection control (SENIC Project) Summary of study design. Am J Epidemiol 1980;111: 472485.Google Scholar
Haley, RW. The “hospital epidemiologist” in U.S. hospitals, 1976–1977: a description of the head of the infection surveillance and control program. Report from the SENIC project. Infect Control 1980;1: 2132.Google Scholar
Karanfil, LV, Conlon, M, Lykens, K, et al. Reducing the rate of nosocomially transmitted respiratory syncytial virus [published erratum appears in Am J Infect Control 1999 Jun;27(3):303].CrossRefGoogle ScholarPubMed
Carlet, J, Astagneau, P, Brun-Buisson, C, et al. French national program for prevention of healthcare-associated infections and antimicrobial resistance, 1992–2008: positive trends, but perseverance needed. Infect Control Hosp Epidemiol 2009;30: 737745.Google Scholar
Gastmeier, P, Kampf, G, Wischnewski, N, et al. Prevalence of nosocomial infections in representative German hospitals. J Hosp Infect 1998;38: 3749.Google Scholar
Harbarth, S, Ruef, C, Francioli, P, Widmer, A, Pittet, D. Nosocomial infections in Swiss university hospitals: a multi-centre survey and review of the published experience Swiss-Noso Network. Schweizerische medizinische Wochenschrift 1999;129: 15211528.Google Scholar
Richet, H, Wiesel, M, Le Gallou, F, Andre-Richet, B, Espaze, E. Methicillin-resistant Staphylococcus aureus control in hospitals: the French experience. Association des Pays de la Loire pour l’Eviction des Infections Nosocomiales. Infect Control Hosp Epidemiol 1996;17: 509511.CrossRefGoogle Scholar
Prevalence of nosocomial infections in France: results of the nationwide survey in 1996: The French Prevalence Survey Study Group. J Hosp Infect 2000;46: 186193.Google Scholar
Buehler, JW, Berkelman, RL, Hartley, DM, Peters, CJ. Syndromic surveillance and bioterrorism-related epidemics. Emerg Infect Dis 2003;9: 11971204.Google Scholar
Bravata, DM, McDonald, KM, Smith, WM, et al. Systematic review: surveillance systems for early detection of bioterrorism-related diseases. Ann Intern Med 2004;140: 910922.Google Scholar
McKibben, L, Fowler, G, Horan, T, Brennan, PJ. Ensuring rational public reporting systems for health care–associated infections: systematic literature review and evaluation recommendations. Am J Infect Control 2006;34: 142149.CrossRefGoogle ScholarPubMed
McKibben, L, Horan, T, Tokars, JI, et al. Guidance on public reporting of healthcare-associated infections: recommendations of the Healthcare Infection Control Practices Advisory Committee. Am J Infect Control 2005;33: 217226.Google Scholar
Fraser, V, Murphy, D, Brennan, PJ, et al. Politically incorrect: legislation must not mandate specific healthcare epidemiology and infection prevention and control practices. Infect Control Hosp Epidemiol 2007;28: 594595.CrossRefGoogle Scholar
McKibben, L, Horan, TC, Tokars, JI, et al. Guidance on public reporting of healthcare-associated infections: recommendations of the Healthcare Infection Control Practices Advisory Committee. Infect Control Hosp Epidemiol 2005;26: 580587.CrossRefGoogle ScholarPubMed
Garner, JS. Guideline for isolation precautions in hospitals. The Hospital Infection Control Practices Advisory Committee. Infect Control Hosp Epidemiol 1996;17: 5380.Google Scholar
Morales, EM HL, Nettleman, M, Larson, C, Sanford, L, Perl, t. Staphylococcus aureus carriage and saphenous vein harvest site infection (HS) following coronary artery bypass surgery (CABG). The 34th Annual Interscience Conference on Antimicrobial Agents and Chemotherapy (ICAAC); 1994; Orlando, FL.Google Scholar
Sands, KE, Yokoe, DS, Hooper, DC, et al. Detection of postoperative surgical-site infections: comparison of health plan–based surveillance with hospital-based programs. Infect Control Hosp Epidemiol 2003;24: 741743.CrossRefGoogle ScholarPubMed
Sands, K, Vineyard, G, Livingston, J, Christiansen, C, Platt, R. Efficient identification of postdischarge surgical site infections: use of automated pharmacy dispensing information, administrative data, and medical record information. J Infect Dis 1999;179: 434441.Google Scholar
Horan, TC, Andrus, M, Dudeck, MA. CDC/NHSN surveillance definition of health care–associated infection and criteria for specific types of infections in the acute care setting. Am J Infect Control 2008;36: 309332.CrossRefGoogle ScholarPubMed
The National Healthcare Safety Network (NHSN) Patient Safety Component Manual. 2016. Available at: www.cdc.gov/nhsn/pdfs/pscmanual/pcsmanual_current.pdf.Google Scholar
Cohen, AL, Calfee, D, Fridkin, SK et al. Recommendations for metrics for multidrug-resistant organisms in healthcare settings: SHEA/HICPAC Position paper. Infect Control Hosp Epidemiol 2008;29: 901913.Google Scholar
McDonald, LC, Coignard, B, Dubberke, E, Song, X, Horan, T, Kutty, PK. Recommendations for surveillance of Clostridium difficile–associated disease. Infect Control Hosp Epidemiol 2007;28: 140145.Google Scholar
Dubberke, ER, Gerding, DN, Classen, D, et al. Strategies to prevent Clostridium difficile infections in acute care hospitals. Infect Control Hosp Epidemiol 2008;29 Suppl 1:S81S92.Google Scholar
Calfee, DP, Salgado, CD, Classen, D, et al. Strategies to prevent transmission of methicillin-resistant Staphylococcus aureus in acute care hospitals. Infect Control Hosp Epidemiol 2008;29 Suppl 1:S62S80.CrossRefGoogle ScholarPubMed
Morrison, AJ Jr., Kaiser, DL, Wenzel, RP. A measurement of the efficacy of nosocomial infection control using the 95 per cent confidence interval for infection rates. Am J Epidemiol 1987;126: 292297.Google Scholar
Cardo, DM, Falk, PS, Mayhall, CG. Validation of surgical wound classification in the operating room. Infect Control Hosp Epidemiol 1993;14: 255259.Google Scholar
Cardo, DM, Falk, PS, Mayhall, CG. Validation of surgical wound surveillance. Infect Control Hosp Epidemiol 1993;14: 211215.Google Scholar
Lessler, J, Brookmeyer, R, Perl, TM. An evaluation of classification rules based on date of symptom onset to identify health-care associated infections. Am J Epidemiol 2007;166: 12201229.CrossRefGoogle ScholarPubMed
Haley, RW, Schaberg, DR, McClish, DK, et al. The accuracy of retrospective chart review in measuring nosocomial infection rates: results of validation studies in pilot hospitals. Am J Epidemiol 1980;111: 516533.CrossRefGoogle ScholarPubMed
Yokoe, DS, Anderson, J, Chambers, R, et al. Simplified surveillance for nosocomial bloodstream infections. Infect Control Hosp Epidemiol 1998;19: 657660.CrossRefGoogle ScholarPubMed
Platt, R, Yokoe, DS, Sands, KE. Automated methods for surveillance of surgical site infections. Emerg Infect Dis 2001;7: 212216.Google Scholar
Woeltje, KF, Lin, MY, Klompas, M, Wright, MO, Zuccotti, G, Trick, WE. Data requirements for electronic surveillance of healthcare-associated infections. Infect Control Hosp Epidemiol 2014;35: 10831091.Google Scholar
Calderwood, MS, Ma, A, Khan, YM, et al. Use of Medicare diagnosis and procedure codes to improve detection of surgical site infections following hip arthroplasty, knee arthroplasty, and vascular surgery. Infect Control Hosp Epidemiol 2012;33: 4049.Google Scholar
Olsen, MA, Fraser, VJ. Use of diagnosis codes and/or wound culture results for surveillance of surgical site infection after mastectomy and breast reconstruction. Infect Control Hosp Epidemiol 2010;31: 544547.Google Scholar
Bolon, MK, Hooper, D, Stevenson, KB, et al. Improved surveillance for surgical site infections after orthopedic implantation procedures: extending applications for automated data. Clin Infect Dis 2009;48: 12231229.Google Scholar
Yokoe, DS, Noskin, GA, Cunnigham, SM, et al. Enhanced identification of postoperative infections among inpatients. Emerg Infect Dis 2004;10: 19241930.Google Scholar
Network NHS. The NHSN Standardized Infection Ratio (SIR). Updated January 2017. 2017.Google Scholar
Mu, Y, Edwards, JR, Horan, TC, Berrios-Torres, SI, Fridkin, SK. Improving risk-adjusted measures of surgical site infection for the national healthcare safety network. Infect Control Hosp Epidemiol 2011;32: 970986.Google Scholar
Broderick, A, Mori, M, Nettleman, MD, Streed, SA, Wenzel, RP. Nosocomial infections: validation of surveillance and computer modeling to identify patients at risk. Am J Epidemiol 1990;131: 734742.Google Scholar
Stratton, CW, Ratner, H, Johnston, PE, Schaffner, W. Focused microbiologic surveillance by specific hospital unit as a sensitive means of defining antimicrobial resistance problems. Diagn Microbiol Infect Dis 1992;15: 11s18s.Google Scholar
Stratton, CW, Ratner, H, Johnston, PE, Schaffner, W. Focused microbiologic surveillance by specific hospital unit: practical application and clinical utility. Clin Ther 1993;15 Suppl A: 1220.Google Scholar
Srinivasan, A, Wolfenden, LL, Song, X, et al. An outbreak of Pseudomonas aeruginosa infections associated with flexible bronchoscopes. N Engl J Med 2003;348: 221227.Google Scholar
Classen, DC, Evans, RS, Pestotnik, SL, Horn, SD, Menlove, RL, Burke, JP. The timing of prophylactic administration of antibiotics and the risk of surgical-wound infection. N Engl J Med 1992;326: 281286.Google Scholar
Pronovost, P, Needham, D, Berenholtz, S, et al. An intervention to decrease catheter-related bloodstream infections in the ICU. N Engl J Med 2006;355: 27252732.Google Scholar
Warren, DK, Cosgrove, SE, Diekema, DJ, et al. A multicenter intervention to prevent catheter-associated bloodstream infections. Infect Control Hosp Epidemiol 2006;27: 662669.CrossRefGoogle ScholarPubMed
Berenholtz, SM, Pronovost, PJ, Lipsett, PA, et al. Eliminating catheter-related bloodstream infections in the intensive care unit. Crit Care Med 2004;32: 20142020.Google Scholar
Edwards, JR, Peterson, KD, Andrus, ML, Dudeck, MA, Pollock, DA, Horan, TC. National Healthcare Safety Network (NHSN) Report, data summary for 2006 through 2007, issued November 2008. Am J Infect Control 2008;36: 609626.Google Scholar
Rosenthal, VD, Maki, DG, Graves, N. The International Nosocomial Infection Control Consortium (INICC): goals and objectives, description of surveillance methods, and operational activities. Am J Infect Control 2008;36:e1e12.Google Scholar
Rosenthal, VD, Maki, DG, Mehta, A, et al. International Nosocomial Infection Control Consortium report, data summary for 2002–2007, issued January 2008. Am J Infect Control 2008;36: 627637.CrossRefGoogle ScholarPubMed
Rosenthal, VD, Maki, DG, Salomao, R, et al. Device-associated nosocomial infections in 55 intensive care units of 8 developing countries. Ann Intern Med 2006;145: 5825891.Google Scholar
Rosenthal, VD, Maki, DG. Prospective study of the impact of open and closed infusion systems on rates of central venous catheter–associated bacteremia. Am J Infect Control 2004;32: 135141.Google Scholar
Wenzel, RP, Osterman, CA, Hunting, KJ, Gwaltney, JM Jr. Hospital-acquired infections. I. Surveillance in a university hospital. Am J Epidemiol 1976;103: 251260.Google ScholarPubMed
Haley, RW, Culver, DH, White, JW, et al. The efficacy of infection surveillance and control programs in preventing nosocomial infections in US hospitals. Am J Epidemiol 1985;121: 182205.Google Scholar
Pittet, D, Harbarth, S, Ruef, C, et al. Prevalence and risk factors for nosocomial infections in four university hospitals in Switzerland. Infect Control Hosp Epidemiol 1999;20: 3742.Google Scholar
Climo, M, Diekema, D, Warren, DK, et al. Prevalence of the use of central venous access devices within and outside of the intensive care unit: results of a survey among hospitals in the prevention epicenter program of the Centers for Disease Control and Prevention. Infect Control Hosp Epidemiol 2003;24: 942945.CrossRefGoogle ScholarPubMed
Schifman, RB, Palmer, RA. Surveillance of nosocomial infections by computer analysis of positive culture rates. J Clin Microbiol 1985;21: 493495.CrossRefGoogle ScholarPubMed
McGuckin, MB, Abrutyn, E. A surveillance method for early detection of nosocomial outbreaks. Apic 1979;7: 1821.Google ScholarPubMed
Wright, MO, Perencevich, EN, Novak, C, Hebden, JN, Standiford, HC, Harris, AD. Preliminary assessment of an automated surveillance system for infection control. Infect Control Hosp Epidemiol 2004;25: 325332.Google Scholar
Reich, NG, Cummings, DA, Lauer, SA, et al. Triggering interventions for influenza: the ALERT algorithm. Clin Infect Dis 2015;60: 499504.Google Scholar
Trick, WE, Zagorski, BM, Tokars, JI, et al. Computer algorithms to detect bloodstream infections. Emerg Infect Dis 2004;10: 16121620.Google Scholar
Gross, PA, Beaugard, A, Van Antwerpen, C. Surveillance for nosocomial infections: can the sources of data be reduced? Infect Control 1980;1: 233236.Google Scholar
Glenister, HM. How do we collect data for surveillance of wound infection? J Hosp Infect 1993;24: 283289.Google Scholar
Maragakis, LL, Winkler, A, Tucker, MG, et al. Outbreak of multidrug-resistant Serratia marcescens infection in a neonatal intensive care unit. Infect Control Hosp Epidemiol 2008;29: 418423.CrossRefGoogle Scholar
Maragakis, LL, Chaiwarith, R, Srinivasan, A, et al. Sphingomonas paucimobilis bloodstream infections associated with contaminated intravenous fentanyl. Emerg Infect Dis 2009;15: 1218.Google Scholar
Maragakis, LL, Cosgrove, SE, Song, X, et al. An outbreak of multidrug-resistant Acinetobacter baumannii associated with pulsatile lavage wound treatment. JAMA 2004;292: 30063011.Google Scholar
Manian, FA, Meyer, L. Comprehensive surveillance of surgical wound infections in outpatient and inpatient surgery. Infect Control Hosp Epidemiol 1990;11: 515520.Google Scholar
Glenister, H, Taylor, L, Bartlett, C, Cooke, M, Sedgwick, J, Leigh, D. An assessment of selective surveillance methods for detecting hospital-acquired infection. Am J Med 1991;91: 121s124s.CrossRefGoogle ScholarPubMed
Ford-Jones, EL, Mindorff, CM, Pollock, E, et al. Evaluation of a new method of detection of nosocomial infection in the pediatric intensive care unit: the Infection Control Sentinel Sheet System. Infect Control Hosp Epidemiol 1989;10: 515520.Google Scholar
Sands, K, Vineyard, G, Platt, R. Surgical site infections occurring after hospital discharge. J Infect Dis 1996;173: 963970.Google Scholar
Holtz, TH, Wenzel, RP. Postdischarge surveillance for nosocomial wound infection: a brief review and commentary. Am J Infect Control 1992;20: 206213.Google Scholar
Yokoe, DS, Christiansen, CL, Johnson, R, et al. Epidemiology of and surveillance for postpartum infections. Emerg Infect Dis 2001;7: 837841.Google Scholar
Nettleman, MD, Nelson, AP. Adverse occurrences during hospitalization on a general medicine service. Clinical Perform Qual Health Care 1994;2: 6772.Google Scholar
Emori, TG, Culver, DH, Horan, TC, et al. National nosocomial infections surveillance system (NNIS): description of surveillance methods. Am J Infect Control 1991;19: 1935.Google Scholar
Gastmeier, P, Geffers, C, Sohr, D, Dettenkofer, M, Daschner, F, Ruden, H. Five years working with the German nosocomial infection surveillance system (Krankenhaus Infektions Surveillance System). Am J Infect Control 2003;31: 316321.CrossRefGoogle ScholarPubMed
Gastmeier, P, Weigt, O, Sohr, D, Ruden, H. Comparison of hospital-acquired infection rates in paediatric burn patients. J Hosp Infect 2002;52: 161165.Google Scholar
Jodra, VM, Rodela, AR, Martinez, EM, Fresnena, NL. Standardized infection ratios for three general surgery procedures: a comparison between Spanish hospitals and U.S. centers participating in the National Nosocomial Infections Surveillance System. Infect Control Hosp Epidemiol 2003;24: 744748.Google Scholar
Nosocomial infection rates for interhospital comparison: limitations and possible solutions. A Report from the National Nosocomial Infections Surveillance (NNIS) System. Infect Control Hosp Epidemiol 1991;12: 609621.Google Scholar
Tokars, JI, Richards, C, Andrus, M, et al. The changing face of surveillance for health care-associated infections. Clin Infect Dis 2004;39: 13471352.Google Scholar
Pronovost, P. Interventions to decrease catheter-related bloodstream infections in the ICU: the Keystone Intensive Care Unit Project. Am J Infect Control 2008;36:S171.e1e5.CrossRefGoogle ScholarPubMed
Marschall, J, Mermel, LA, Classen, D, et al. Strategies to prevent central line–associated bloodstream infections in acute care hospitals. Infect Control Hosp Epidemiol 2008;29 Suppl 1:S22S30.Google Scholar
Lee, TB, Montgomery, OG, Marx, J, Olmsted, RN, Scheckler, WE. Recommended practices for surveillance: Association for Professionals in Infection Control and Epidemiology (APIC), Inc. Am J Infect Control 2007;35: 427440.Google Scholar
Outline for Healthcare-Associated Infections Surveilland. 2006. Available at: www.cdc.gov/ncidod/dhqp/nhsn.html. Accessed March 15, 2009,Google Scholar
Williams, JD SK, Atukorala, SD. Guidelines on Prevention and Control of Hospital-Associated Infections. New Dehli: World Health Organization; 2002.Google Scholar
Wong, ES, Rupp, ME, Mermel, L, et al. Public disclosure of healthcare-associated infections: the role of the Society for Healthcare Epidemiology of America. Infect Control Hosp Epidemiol 2005;26: 210212.Google Scholar
Haley, RW, Shachtman, RH. The emergence of infection surveillance and control programs in US hospitals: an assessment, 1976. Am J Epidemiol 1980;111: 574591.Google Scholar
Nguyen, GT, Proctor, SE, Sinkowitz-Cochran, RL, Garrett, DO, Jarvis, WR. Status of infection surveillance and control programs in the United States, 1992–1996. Association for Professionals in Infection Control and Epidemiology, Inc. Am J Infect Control 2000;28: 392400.CrossRefGoogle ScholarPubMed
Evans, RS, Larsen, RA, Burke, JP, et al. Computer surveillance of hospital-acquired infections and antibiotic use. JAMA 1986;256: 10071011.Google Scholar
Chalfine, A, Cauet, D, Lin, WC, et al. Highly sensitive and efficient computer-assisted system for routine surveillance for surgical site infection. Infect Control Hosp Epidemiol 2006;27: 794801.CrossRefGoogle ScholarPubMed
Landers, T, Davis, J, Crist, K, Malik, C. APIC MegaSurvey: Methodology and overview. Am J Infect Control 2017; 45: 584588.Google Scholar
Dellit, TH, Owens, RC, McGowan, JE Jr., et al. Infectious Diseases Society of America and the Society for Healthcare Epidemiology of America guidelines for developing an institutional program to enhance antimicrobial stewardship. Clin Infect Dis 2007;44: 159177.Google Scholar
Wisniewski, MF, Kieszkowski, P, Zagorski, BM, Trick, WE, Sommers, M, Weinstein, RA. Development of a clinical data warehouse for hospital infection control. J Am Med Inform Assoc 2003;10: 454462.Google Scholar

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