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Erythropoietin for Neonatal Encephalopathy in LMIC (EMBRACE Trial)

Erythropoietin Monotherapy for Brain Regeneration in Neonatal Encephalopathy in Low and Middle-Income Countries

Status
Recruiting
Phases
Phase 3
Study type
Interventional
Source
ClinicalTrials.gov
Registry ID
NCT05395195
Acronym
EMBRACE
Enrollment
504
Registered
2022-05-27
Start date
2022-12-31
Completion date
2026-12-01
Last updated
2024-03-19

For informational purposes only — not medical advice. Sourced from public registries and may not reflect the latest updates. Terms

Conditions

Encephalopathy, Erythropoietin, Newborn Asphyxia

Brief summary

One million babies die, and at least 2 million survive with lifelong disabilities following neonatal encephalopathy (NE) in low and middle-income countries (LMICs), every year. Cooling therapy in the context of modern tertiary intensive care improves outcome after NE in high-income countries. However, the uptake and applicability of cooling therapy in LMICs is poor, due to the lack of intensive care and transport facilities to initiate and administer the treatment within the six-hours window after birth as well as the absence of safety and efficacy data on hypothermia for moderate or severe NE. Erythropoietin (Epo) is a promising neuroprotectant with both acute effects (anti-inflammatory, anti-excitotoxic, antioxidant, and antiapoptotic) and regenerative effects (neurogenesis, angiogenesis, and oligodendrogenesis),which are essential for the repair of injury and normal neurodevelopment when used as a mono therapy in pre-clinical models (i.e without adjunct hypothermia). The preclinical data on combined use of Eythropoeitin and hypothermia is less convincing as the mechanisms overlap. Thus, the HEAL (High dose erythropoietin for asphyxia and encephalopathy) trial, a large phase III clinical trial involving 500 babies with with encephalopathy reported that that Erythropoietin along with hypothermia is not beneficial. In contrast, the pooled data from 5 small randomized clinical trials (RCTs) (n=348 babies), suggests that Epo (without cooling therapy) reduce the risk of death or disability at 3 months or more after NE (Risk Ratio 0.62 (95% CI 0.40 to 0.98). Hence, a definitive trial (phase III) for rigorous evaluation of the safety and efficacy of Epo monotherapy in LMIC is now warranted.

Detailed description

The burden of neonatal encephalopathy is far higher in low and middle-income countries. Recently, the Hypothermia for Encephalopathy in Low and Middle-Income Countries Trial (HELIX) study concluded cooling therapy did not reduce the combined outcome of death or disability at 18 months after neonatal encephalopathy in low-income and middle-income countries. In fact, the results found that cooling therapy significantly increased death alone. This warrants exploration of the efficacy of other treatment adjuncts for these settings. One medication with potential for monotherapy is Erythropoietin. Erythropoietin is an erythropoiesis stimulating cytokine used for the treatment of anaemia. It is a Food and Drug Administration (FDA) approved drug that is widely used for treatment of anaemia including premature babies and has extensive safety profile in newborn babies. Erythropoietin is also produced by neurons and glia in the hippocampus, internal capsule, cortex, and midbrain in response to hypoxia. More recently, erythropoietin has been reported as having anti-apoptotic, anti-inflammatory and anti-oxidative effects, making it a prime neuroprotective candidate. It also reduces free iron accumulation which occurs due to hypoxic ischemia by inducing erythropoiesis, which promotes neurogenesis. Extensive preclinical small and large animal models have demonstrated neuroprotective and neuro reparative effects of Erythropoietin when used as monotherapy. A number of small randomised controlled trials have been reported from low and middle-income countries. A systematic review and meta-analysis of Erythropoietin monotherapy in babies with neonatal encephalopathy in LMIC showed pooled data including a total of 348 babies from 5 clinical trials in LMIC suggest 40% relative risk reduction (Risk Ratio 0.62 (95% Confidence Intervals (CI) 0.40 to 0.98) in death or disability at 18 months with Erythropoietin, compared with placebo. None of these clinical trials have reported any serious adverse events of Erythropoietin monotherapy. Erythropoietin dose used in these trials varied from 300U/kg to 2500U/kg, single dose to a maximum of two weeks of duration starting within 24 hours after birth. The largest of these trials, reported from China have used a low dose (500U/kg) on alternate days for two weeks. This trial recruited 153 babies with moderate or severe encephalopathy and reported that Erythropoietin significantly reduced death or disability at 18 months. More recently, another randomised controlled trial of Erythropoietin involving 62 normothermic babies with moderate or severe neonatal encephalopathy has been reported from Government Medical College, Aurangabad in India. The investigators used an Erythropoietin dose of 500 U/kg alternate days for 10 days starting within 24 hours. Neonatal mortality was significantly lower (39%; 12/31) in the Erythropoietin group compared with the placebo group (71%; 22/31) (p=0.01). No adverse events were reported in the Erythropoietin group. The EMBRACE trial is a phase III, multi-country, double-blinded, placebo-controlled randomised controlled trial of Erythropoietin versus sham injection (placebo) in babies with neonatal encephalopathy in low and middle-income countries. All clinical and study team except for the nurse administering the trial drug will be masked to the intervention. The investigators plan to randomise 504 babies in this trial. The dosing regimen will be IV/Sub cutaneous Erythropoietin 500unit/kg within 6 hours of birth and then daily until 8 days. In total, there will be 9 doses. Body temperature of all babies will be monitored 4 hourly for the first three days after birth and normothermia (36.0-37.5°C) will be maintained as a part of the usual care at these hospitals with an algorithm to prevent/treat hyperthermia. Magnetic resonance biomarkers including spectroscopy and diffusion tensor imaging will be acquired between 1 to 2 weeks of age in all recruited babies. The MR scanners and sequences at each site will be harmonised prior to recruitment. The trial will have an 18 month recruitment period, a 18 month follow-up period, and 5 months for data analysis and write up. A pilot study (external pilot) of 50 babies will be done prior to the start of the EMBRACE trial (Jan 2023 to April 2023) but these patients will not be included in the main trial. Minor updates to the trial protocol may be made after the completion of the pilot trial.

Interventions

DRUGErythropoietin

Erythropoietin injections (500u/kg) x 9 doses

Neonatal intensive care monitoring and support including ventilatory and inotropic support as clinically indicated

Sponsors

Imperial College London
Lead SponsorOTHER

Study design

Allocation
RANDOMIZED
Intervention model
PARALLEL
Primary purpose
TREATMENT
Masking
QUADRUPLE (Subject, Caregiver, Investigator, Outcomes Assessor)

Masking description

All injections with be administered behind a screen by dedicated personnel. The control arm will have mock (pretend) injections.

Intervention model description

Erythropoietin (intravenous or subcutaneous)

Eligibility

Sex/Gender
ALL
Age
1 Hours to 6 Hours
Healthy volunteers
No

Inclusion criteria

(all of below should be met) * Inborn babies born at a gestational age greater than or equal to 36 weeks, with a birth weight \>=1.8 kg * At least one of the following: need for continued resuscitation at 5 minutes of age; 5-minute Apgar score \< 6; metabolic acidosis (pH \< 7.0; base deficit \> 16 mmol/L) in cord or blood gas within the first hour of birth. * Moderate or severe neonatal encephalopathy on modified Sarnat staging performed between 1 to 6 hours after birth.

Exclusion criteria

* Imminent death at the time of recruitment * Babies born at home or those admitted after 6 hours of birth. * Major life-threatening congenital malformations * Head circumference \<30 cm at birth * Babies undergoing induced hypothermia * Migrant family or parents unable/unlikely to come back for follow-up at 18 months * Sentinel event and encephalopathy occurred only after birth * Unable to consent in primary language of parent(s)

Design outcomes

Primary

MeasureTime frameDescription
Number of babies who die or survive with moderate or severe disability18 to 22 monthsDeath or moderate or severe disability in survivors

Secondary

MeasureTime frameDescription
Number of babies with gastric bleedsDuring neonatal hospitalisation (Expected average of 2 weeks)Fresh blood \> 5 ml from nasogastric tube
Number of babies with intracranial haemorrhageDuring neonatal hospitalisation (Expected average of 2 weeks)Major parenchymal or intraventricular bleed on cranial ultrasound or magnetic resonance imaging.
Number of babies with culture-proven sepsisDuring neonatal hospitalisation (Expected average of 2 weeks)Isolation of a pathogenic organism from blood or cerebrospinal fluid along with clinical evidence of sepsis or elevation of C-reactive protein
Number of babies with severe thrombocytopeniaDuring neonatal hospitalisation (Expected average of 2 weeks)Platelet count of less than 25 000 per μL or less than 50 000 per μL with active bleeding
Number of babies with abnormal neurological examination at dischargeDuring neonatal hospitalisation (Expected average of 2 weeks)Structured neurological examination as per the NICHD NRN trial (Shankaran et al NEJM 2005) discharge exam criteria
Number of babies who dieUpto 22 monthsMortality from all causes
Number of babies who survive without neurodisability18 to 22 monthsSurvival with Bayley composite scale scores \>84 in all domains, no cerebral palsy, no seizure disorder, hearing or visual defect
Number of babies with cerebral palsy18 to 22 monthsCerebral palsy with a Gross Motor Function Classification Score \>1
Number of babies with microcephaly18 to 22 monthsHead circumference more than 2 standard deviations below the mean
Number of babies with persistent pulmonary hypertensionDuring neonatal hospitalisation (Expected average of 2 weeks)Severe hypoxemia disproportionate to the severity of lung disease with a significant pre-and post ductal saturation difference on pulse oximetry
Number of babies with coagulopathyDuring neonatal hospitalisation (Expected average of 2 weeks)Prolonged blood coagulation requiring blood products

Other

MeasureTime frameDescription
White matter magnetic resonance (MR) NAA/Creatine peak area ratio10 to 14 days after birthNAA/Creatine peak area metabolic rations in the White matter on proton MR spectroscopy
White matter magnetic resonance (MR) Lactate/NAA peak area ratio10 to 14 days after birthLactate/NAA peak area metabolic rations in the White matter on proton MR spectroscopy
Basal ganglia/thalami magnetic resonance (MR) Lactate/NAA peak area ratio10 to 14 days after birthLactate/NAA peak area metabolic rations in the deep brain nuclei on proton MR spectroscopy
Basal ganglia/thalami magnetic resonance (MR) NAA/Creatine peak area ratio10 to 14 days after birthNAA/Creatine peak area metabolic rations in the deep brain nuclei on proton MR spectroscopy

Countries

Bangladesh, India, Sri Lanka

Contacts

Primary ContactReema Garegrat, DM
r.garegrat@imperial.ac.uk02033132473
Backup ContactIsmita Chhettri, PhD
i.chhetri@imperial.ac.uk02033132473

Outcome results

None listed

Source: ClinicalTrials.gov · Data processed: Feb 6, 2026