Neonatal thermal care, part II: Microbial growth under temperature probe covers

S Blackburn1, D DePaul, L A Loan

  • 1Department of Family and Child Nursing, University of Washington, Seattle 98198-7262, USA.

Neonatal Network : NN
|July 30, 2002
PubMed
Abstract

Insights

Temperature probe covers did not significantly increase skin microbe colonization in infants. However, foam covers were associated with more skin irritation compared to hydrogel covers.

Area of Science:

  • Neonatal care
  • Infection control
  • Medical device safety

Background:

  • Nosocomial infections are a significant concern in neonatal intensive care units.
  • Temperature monitoring is crucial for infant care, often involving skin-contact probes.
  • The potential for medical device components to harbor microbes requires investigation.

Purpose of the Study:

  • To investigate whether temperature probe covers promote skin microbe colonization in infants.
  • To compare the impact of foam versus hydrogel probe covers on microbial growth.
  • To assess the effect of probe covers on infant skin integrity.

Main Methods:

  • A descriptive, comparative study randomized 26 infants (29-34 weeks gestational age) into foam or hydrogel probe cover groups.
  • Skin cultures were collected 72 hours post-placement, with bacterial growth quantified at 24 and 48 hours.
  • Skin integrity was evaluated using visual irritation scores (VIS) after probe cover removal.

Main Results:

  • No statistically significant differences in microbial growth were observed between foam and hydrogel probe cover groups (p > .05).
  • Visual irritation scores (VIS) showed clinical significance, with infants using foam covers exhibiting more sustained skin irritation.
  • The study found no evidence that probe covers contribute to nosocomial infections via microbial colonization.

Conclusions:

  • Neither foam nor hydrogel temperature probe covers significantly increased skin microbial colonization in the studied infant population.
  • Foam probe covers may lead to increased skin irritation in neonates compared to hydrogel covers.
  • Further research into material biocompatibility for neonatal medical devices is warranted.

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