Differences in Cerebral Tissue Oxygenation in Preterm Neonates Receiving Adult or Cord Blood Red Blood Cell Transfusions.
Journal
JAMA network open
ISSN: 2574-3805
Titre abrégé: JAMA Netw Open
Pays: United States
ID NLM: 101729235
Informations de publication
Date de publication:
01 Nov 2023
01 Nov 2023
Historique:
medline:
8
11
2023
pubmed:
7
11
2023
entrez:
7
11
2023
Statut:
epublish
Résumé
Repeated transfusions in preterm neonates with anemia of prematurity replace fetal hemoglobin (HbF) with adult Hb (HbA), which has a low oxygen affinity. The reduction of HbF is associated with a higher incidence of retinopathy of prematurity (ROP). To assess whether HbF and HbA are differently associated with cerebral tissue oxygenation in preterm neonates. This cohort study was a single-center, pilot study on cerebral oxygenation kinetics in preterm neonates with a gestational age between 24.0 weeks and 27.9 weeks who were admitted to the neonatal intensive care unit of Policlinico Universitario A. Gemelli IRCCS from December 27, 2021, to May 15, 2023. This study was ancillary to the ongoing, double-blind, multicenter Umbilical or Adult Donor Red Blood Cells in Extremely Low Gestational Age Neonates and Retinopathy of Prematurity (BORN) randomized clinical trial. The BORN trial outcome was ROP severity in neonates randomized to receive standard packed red blood cell (PRBC) transfusions obtained from RBCs of adult donors (A-RBCs) or from cord blood (CB-RBCs). According to standard procedures at the institute's neonatal intensive care unit, patients concurrently received continuous cerebral near-infrared spectroscopy (NIRS) monitoring. This cohort study was not prespecified in the trial protocol. Transfusion with A-RBCs or CB-RBCs. The main outcome was the kinetics of cerebral regional oxygen saturation (crSO2) and cerebral fraction of tissue oxygen extraction (cFTOE) associated with A-RBC or CB-RBC transfusions. Cerebral NIRS monitoring was performed by neonatologists and nurses, who were blinded to the PRBC type. The NIRS monitoring was conducted starting with the blood product order, during transfusion, and for the subsequent 24 hours after transfusion completion. The mean treatment effects of A-RBCs or CB-RBCs were quantified using a linear mixed model for repeated measures. Of 23 randomized neonates, 17 (11 male [64.7%]; median gestational age at birth, 25.6 weeks [IQR, 25.3-26.1 weeks]) with a median birth weight of 840 g (IQR, 580-900 g) were included in the study; NIRS was evaluated for 42 transfusion episodes, of which 22 were A-RBCs and 20 were CB-RBCs. Globally considering all posttransfusion time points, the overall crSO2 covariate-adjusted mean after CB-RBC transfusions was 5.27% lower (95% CI, 1.20%-9.34%; P = .01) than that after A-RBC transfusions, while the cFTOE after CB-RBC transfusions was 6.18% higher (95% CI, 1.66%-10.69%; P = .009) than that after A-RBCs. The findings of this cohort study suggest that A-RBC transfusions may be associated with more oxygen delivery to cerebral tissues of preterm neonates than transfusions from CB-RBCs. This finding may explain the previously observed association between low HbF and high ROP risk. It also suggests that use of CB to meet the RBC transfusion needs of neonates with a gestational age of less than 28 weeks may protect cerebral tissues from overexposure to oxygen.
Identifiants
pubmed: 37934499
pii: 2811465
doi: 10.1001/jamanetworkopen.2023.41643
pmc: PMC10630897
doi:
Substances chimiques
Oxygen
S88TT14065
Types de publication
Randomized Controlled Trial
Multicenter Study
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
e2341643Références
Transfus Med Rev. 2022 Jan;36(1):27-47
pubmed: 34702614
PLoS One. 2018 Jan 5;13(1):e0190612
pubmed: 29304150
Arch Dis Child Fetal Neonatal Ed. 2021 Jan;106(1):88-92
pubmed: 32847833
Br J Haematol. 2020 Oct;191(2):263-268
pubmed: 32510635
Br J Ophthalmol. 2022 Jul;106(7):970-974
pubmed: 33547036
Br J Ophthalmol. 2023 Mar;107(3):380-383
pubmed: 34620603
J Perinatol. 2021 Apr;41(4):675-688
pubmed: 33589724
Pediatr Res. 2016 Jan;79(1-1):55-64
pubmed: 26389823
Eye (Lond). 2017 Oct;31(10):1451-1455
pubmed: 28548651
J Perinatol. 2011 Jan;31(1):51-7
pubmed: 20539273
Neonatology. 2007;92(2):120-6
pubmed: 17377413
Front Pediatr. 2022 Feb 10;10:814194
pubmed: 35223696
Trials. 2022 Dec 13;23(1):1010
pubmed: 36514106
Semin Fetal Neonatal Med. 2015 Jun;20(3):164-72
pubmed: 25934116
J Pediatr. 1978 Apr;92(4):529-34
pubmed: 305471
Neonatology. 2022;119(5):602-610
pubmed: 35882188
Front Pediatr. 2021 Aug 13;9:710465
pubmed: 34485197
Am J Perinatol. 2010 Jun;27(6):445-53
pubmed: 20099219
J Cereb Blood Flow Metab. 2000 Feb;20(2):272-9
pubmed: 10698064
J Perinatol. 2013 Apr;33(4):282-7
pubmed: 22935773
J Cereb Blood Flow Metab. 2005 May;25(5):545-53
pubmed: 15744253
Blood Transfus. 2015 Jul;13(3):484-97
pubmed: 26445308
Neonatology. 2019;116(4):356-362
pubmed: 31487704
Lancet. 2013 Oct 26;382(9902):1445-57
pubmed: 23782686
Front Pediatr. 2021 Jan 21;8:624113
pubmed: 33553078
Lancet. 2003 May 24;361(9371):1789-91
pubmed: 12781540
Biol Res Nurs. 2018 Oct;20(5):497-512
pubmed: 30068228
Arch Dis Child Fetal Neonatal Ed. 2010 Sep;95(5):F352-8
pubmed: 20466739
J Pediatr. 2013 Apr;162(4):698-704.e2
pubmed: 23140883
J Ultrasound Med. 2014 Jun;33(6):1103-10
pubmed: 24866621
Eur J Pediatr. 1997 Apr;156(4):305-10
pubmed: 9128817
Arch Dis Child Fetal Neonatal Ed. 2002 Nov;87(3):F189-92
pubmed: 12390989
J Perinatol. 2016 Nov;36(11):966-971
pubmed: 27559717