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Practice patterns for acquiring neuroimaging after pediatric in-hospital cardiac arrest

  • Matthew P Kirschen
  • , Natalie L Ullman
  • , Ron W Reeder
  • , Tageldin Ahmed
  • , Michael J Bell
  • , Robert A Berg
  • , Candice Burns
  • , Joseph A Carcillo
  • , Todd C Carpenter
  • , JWesley Diddle
  • , Myke Federman
  • , Ericka L Fink
  • , Aisha H Frazier
  • , Stuart H Friess
  • , Kathryn Graham
  • , Christopher M Horvat
  • , Leanna L Huard
  • , Todd J Kilbaugh
  • , Tensing Maa
  • , Arushi Manga
  • Patrick S McQuillen, Kathleen L Meert, Ryan W Morgan, Peter M Mourani, Vinay M Nadkarni, Maryam Y Naim, Daniel Notterman, Chella A Palmer, Murray M Pollack, Anil Sapru, Matthew P Sharron, Neeraj Srivastava, Bradley Tilford, Shirley Viteri, Heather A Wolfe, Andrew R Yates, Alexis Topjian, Robert M Sutton, Craig A Press
  • University of Pennsylvania
  • University of Utah
  • Central Michigan University
  • George Washington University School of Medicine
  • Michigan State University
  • University of Pittsburgh
  • University of Colorado School of Medicine
  • University of California, Los Angeles
  • Washington University School of Medicine
  • The Ohio State University College of Medicine
  • University of California
  • University of Arkansas
  • Princeton University

Producción científicarevisión exhaustiva

4 Citas (Scopus)

Resumen

AIMS: To determine which patient and cardiac arrest factors were associated with obtaining neuroimaging after in-hospital cardiac arrest, and among those patients who had neuroimaging, factors associated with which neuroimaging modality was obtained.

METHODS: Retrospective cohort study of patients who survived in-hospital cardiac arrest (IHCA) and were enrolled in the ICU-RESUS trial (NCT02837497).

RESULTS: We tabulated ultrasound (US), CT, and MRI frequency within 7 days following IHCA and identified patient and cardiac arrest factors associated with neuroimaging modalities utilized. Multivariable models determined which factors were associated with obtaining neuroimaging. Of 1000 patients, 44% had ≥ 1 neuroimaging study (US in 31%, CT in 18%, and MRI in 6% of patients). Initial USs were performed a median of 0.3 [0.1,0.5], CTs 1.4 [0.4,2.8], and MRIs 4.1 [2.2,5.1] days post-arrest. Neuroimaging timing and frequency varied by site. Factors associated with greater odds of neuroimaging were cardiac arrest in CICU (versus PICU), longer duration CPR, receiving ECMO post-arrest, and post-arrest care with targeted temperature management or EEG monitoring. US performance was associated with congenital heart disease. CT was associated with age ≥ 1-month, greater pre-arrest disability, and receiving CPR for ≥ 16 min. MRI utilization increased with pre-existing respiratory insufficiency and respiratory decompensation as arrest cause, and medical cardiac and surgical non-cardiac or trauma illness category. Overall, if neuroimaging was obtained, US was more common in CICU while CT/MRI were utilized more in PICU.

CONCLUSIONS: Practice patterns for acquiring neuroimaging after IHCA are variable and influenced by patient, cardiac arrest, and site factors.

Idioma originalEnglish
Número de artículo110506
Páginas (desde-hasta)110506
PublicaciónResuscitation
Volumen207
Fecha en línea anticipada21 ene 2025
DOI
EstadoPublished - feb 2025

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