Literature DB >> 11110344

Continuous measurement of core body temperature in preterm infants.

S Dollberg1, A Rimon, H D Atherton, S B Hoath.   

Abstract

We tested a transcutaneous core temperature sensor using a method that relies on the principle of zero heat flow. We tested the hypothesis that transcutaneous and rectal temperatures would track within 0.3 degrees C of each other for >90% of the time. A thermistor was placed between the infant's abdomen or back and the incubator's or radiant warmer's mattress, or within the axilla, attached to the skin with a foam adhesive disk insulator. Thirty preterm infants were either placed on their abdomens or backs in a convective incubator or under a radiant warmer, and continuous transcutaneous and rectal temperatures were measured for 1 hour. There were no significant differences between abdominal and core temperatures or between axillary and core temperatures measured in double-walled convective incubators or in radiant warmers. The rectal-abdominal temperature difference was significantly less than the rectal-axillary difference (p < 0.02) in convective incubators, but not when the infant was placed prone under radiant warmers (p = 0.27). Transcutaneous thermometry is reliable for monitoring core body temperature as indicated by rectal temperature in stable preterm infants in a convective incubator.

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Year:  2000        PMID: 11110344     DOI: 10.1055/s-2000-10008

Source DB:  PubMed          Journal:  Am J Perinatol        ISSN: 0735-1631            Impact factor:   1.862


  9 in total

1.  Clinical detection of low upper body blood flow in very premature infants using blood pressure, capillary refill time, and central-peripheral temperature difference.

Authors:  D A Osborn; N Evans; M Kluckow
Journal:  Arch Dis Child Fetal Neonatal Ed       Date:  2004-03       Impact factor: 5.747

2.  Insulation disks on the skin to estimate muscle temperature.

Authors:  Dragan Brajkovic; Michel B Ducharme; Paul Webb; Frank D Reardon; Glen P Kenny
Journal:  Eur J Appl Physiol       Date:  2006-05-24       Impact factor: 3.078

3.  Prediction of human core body temperature using non-invasive measurement methods.

Authors:  Reto Niedermann; Eva Wyss; Simon Annaheim; Agnes Psikuta; Sarah Davey; René Michel Rossi
Journal:  Int J Biometeorol       Date:  2013-06-13       Impact factor: 3.787

4.  Noninvasive assessment of muscle temperature during rest, exercise, and postexercise recovery in different environments.

Authors:  Andreas D Flouris; Paul Webb; Glen P Kenny
Journal:  J Appl Physiol (1985)       Date:  2015-03-26

5.  Effects of body position on thermal, cardiorespiratory and metabolic activity in low birth weight infants.

Authors:  Amer Ammari; Karl F Schulze; Kiyoko Ohira-Kist; Sudha Kashyap; William P Fifer; Michael M Myers; Rakesh Sahni
Journal:  Early Hum Dev       Date:  2009-05-05       Impact factor: 2.079

6.  The rhythm of a preterm neonate's life: ultradian oscillations of heart rate, body temperature and sleep cycles.

Authors:  Gilbert Koch; Kerstin Jost; Marc Pfister; Alexandre N Datta; Sven M Schulzke; René Koch
Journal:  J Pharmacokinet Pharmacodyn       Date:  2021-02-01       Impact factor: 2.745

7.  The Association Between Very Premature Infant Body Temperatures Over Time and Respiratory Care.

Authors:  Jane L Ralphe; Susan G Silva; Robin B Dail; Debra H Brandon
Journal:  Biol Res Nurs       Date:  2020-10-30       Impact factor: 2.318

8.  Use of a Polyethylene Bag to Reduce Perioperative Regional and Whole-Body Heat Losses in Low-Birth-Weight Neonates.

Authors:  Pierre Tourneux; Estelle Durand; Amandine Pelletier; Laurent Ghyselen; Véronique Bach; Jean-Pierre Libert
Journal:  Biomed Res Int       Date:  2017-07-25       Impact factor: 3.411

9.  Body temperature instability and respiratory morbidity in the very low birth weight infant: a multiple case, intensive longitudinal study.

Authors:  Jane L Ralphe; Susan G Silva; Robin B Dail; Debra H Brandon
Journal:  BMC Pediatr       Date:  2020-10-20       Impact factor: 2.125

  9 in total

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