Sustained reduction of microbial burden on common hospital surfaces through introduction of copper

Michael G Schmidt1, Hubert H Attaway, Peter A Sharpe

  • 1Medical University of South Carolina, Department of Microbiology and Immunology, Charleston, South Carolina, USA. schmidtm@musc.edu

Insights

Environmental surface contamination contributes to healthcare-associated infections (HAIs). Copper surfaces significantly reduced microbial burden on ICU surfaces, potentially creating a safer hospital environment for patients and staff.

Area of Science:

  • Infection Control
  • Environmental Microbiology
  • Materials Science

Background:

  • Health care-associated infections (HAIs) pose a significant risk to patient safety.
  • The role of environmental surface contamination in HAI development requires further definition.
  • Microbial burden (MB) on frequently touched surfaces in intensive care units (ICUs) is a key area of concern.

Purpose of the Study:

  • To quantify the microbial burden on commonly touched surfaces in ICUs.
  • To evaluate the efficacy of copper-alloy surfaces in reducing microbial burden.
  • To assess the impact of copper surfaces on creating a safer healthcare environment.

Main Methods:

  • Sampling of six objects in 16 ICU rooms across three hospitals over 43 months.
  • Installation of copper-alloy surfaces on monitored objects in half of the rooms.
  • Comparative analysis of microbial burden on copper and control surfaces during pre- and post-intervention phases.

Main Results:

  • The average microbial burden on pre-intervention surfaces was 28 times higher than recommended levels.
  • Copper surfaces demonstrated an 83% reduction in average microbial burden compared to control surfaces.
  • Significant reduction in MB was observed continuously with copper surfaces (465 CFU/100 cm(2)) versus controls (2,674 CFU/100 cm(2)).

Conclusions:

  • Copper-alloy surfaces significantly reduce microbial contamination on frequently touched objects in ICUs.
  • The continuous reduction of microbial burden by copper surfaces offers a potentially safer environment for patients and healthcare workers.
  • Implementing antimicrobial copper surfaces is a promising strategy for enhancing infection control in healthcare settings.

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