Late erythropoiesis-stimulating agents to prevent red blood cell transfusion in preterm or low birth weight infants

被引:14
|
作者
Aher, Sanjay M. [1 ]
Ohlsson, Arne [2 ,3 ,4 ,5 ]
机构
[1] Neocare Hosp, Neonatal Intens Care Unit, Nasik 422002, Maharashtra, India
[2] Univ Toronto, Dept Paediat, Toronto, ON, Canada
[3] Univ Toronto, Dept Obstet, Toronto, ON, Canada
[4] Univ Toronto, Dept Gynaecol, Toronto, ON, Canada
[5] Univ Toronto, Inst Hlth Policy Management & Evaluat, Toronto, ON, Canada
关键词
Age Factors; Anemia; Neonatal; *prevention; control; Bronchopulmonary Dysplasia [etiology; Cause of Death; Drug Administration Schedule; Erythrocyte Transfusion [*statistics & numerical data; Erythropoietin [*administration & dosage] [blood; Hematinics [*administration & dosage; Hospital Mortality; Infant; Low Birth Weight [*blood; Premature; *blood; Randomized Controlled Trials as Topic; Retinopathy of Prematurity [etiology; Time Factors; Humans; Newborn; RECOMBINANT-HUMAN-ERYTHROPOIETIN; INTRAVENOUS IRON SUPPLEMENTATION; CENTRAL-NERVOUS-SYSTEM; PREMATURE-INFANTS; DOUBLE-BLIND; ADULT HEMOGLOBIN; ANEMIA; PROTEIN; RHUEPO; THERAPY;
D O I
10.1002/14651858.CD004868.pub6
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Background Preterm infants have low plasma levels of erythropoietin (EPO), providing a rationale for the use of erythropoiesis-stimulating agents (ESAs) to prevent or treat anaemia. Darbepoetin (Darbe) and EPO are currently available ESAs. Objectives To assess the effectiveness and safety of late initiation of ESAs, between eight and 28 days after birth, in reducing the use of red blood cell (RBC) transfusions in preterm or low birth weight infants. Search methods We used the standard search strategy of Cochrane Neonatal to search the Cochrane Central Register of Controlled Trials (CENTRAL 2018, Issue 5), MEDLINE via PubMed (1966 to 5 June 2018), Embase (1980 to 5 June 2018), and CINAHL (1982 to 5 June 2018). We searched clinical trials databases, conference proceedings, and the reference lists of retrieved articles for randomised controlled trials and quasirandomised trials. Selection criteria Randomised or quasi-randomised controlled trials of late initiation of EPO treatment (started at eight days of age) versus placebo or no intervention in preterm (< 37 weeks) or low birth weight (< 2500 grams) neonates. Data collection and analysis We performed data collection and analyses in accordance with the methods of the Cochrane Neonatal Review Group. We used the GRADE approach to assess the quality of the evidence. Main results We include 31 studies (32 comparisons) randomising 1651 preterm infants. Literature searches in 2018 identified one new study for inclusion. No new on-going trials were identified and no studies used darbepoetin. Most included trials were of small sample size. The meta-analysis showed a significant effect on the use of one or more RBC transfusions (21 studies (n = 1202); typical risk ratio (RR) 0.72, 95% confidence interval (CI) 0.65 to 0.79; typical risk difference (RD) -0.17, 95% CI -0.22 to -0.12; typical number needed to treat for an additional beneficial outcome (NNTB) 6, 95% CI 5 to 8). There was moderate heterogeneity for this outcome (RRI2 = 66%; RDI2 = 58%). The quality of the evidence was very low. We obtained similar results in secondary analyses based on different combinations of high/low doses of EPO and iron supplementation. There was no significant reduction in the total volume (mL/kg) of blood transfused per infant (typical mean difference (MD) -1.6 mL/kg, 95% CI -5.8 to 2.6); 5 studies, 197 infants). There was high heterogeneity for this outcome (I-2 = 92%). There was a significant reduction in the number of transfusions per infant (11 studies enrolling 817 infants; typical MD -0.22, 95% CI -0.38 to -0.06). There was high heterogeneity for this outcome (I-2 = 94%). Three studies including 404 infants reported on retinopathy of prematurity (ROP) (all stages or stage not reported), with a typical RR 1.27 (95% CI 0.99 to 1.64) and a typical RD of 0.09 (95% CI -0.00 to 0.18). There was high heterogeneity for this outcome for both RR (I-2 = 83%) and RD (I-2 = 82%). The quality of the evidence was very low.Three trials enrolling442 infants reported on ROP (stage >= 3). The typical RR was 1.73 (95% CI 0.92 to 3.24) and the typical RD was 0.05 (95% CI -0.01 to 0.10). There was no heterogeneity for this outcome for RR (I-2 = 18%) but high heterogeneity for RD (I-2 = 79%). The quality of the evidence was very low.There were no significant differences in other clinical outcomes including mortality and necrotising enterocolitis. For the outcomes of mortality and necrotising enterocolitis, the quality of the evidence was moderate. Long-term neurodevelopmental outcomes were not reported. Authors' conclusions Late administration of EPO reduces the use of one or more RBC transfusions, the number of RBC transfusions per infant (<1 transfusion per infant) but not the total volume (mL/kg) of RBCs transfused per infant. Any donor exposure is likely not avoided as most studies included infants who had received RBC transfusions prior to trial entry. Late EPO does not significantly reduce or increase any clinically important adverse outcomes except for a trend in increased risk for ROP. Further research of the use of late EPO treatment, to prevent donor exposure, is not indicated. Research efforts should focus on limiting donor exposure during the first few days of life in sick neonates, when RBC requirements are most likely to be required and cannot be prevented by late EPO treatment. The use of satellite packs (dividing one unit of donor blood into many smaller aliquots) may reduce donor exposure.
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