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Enrolling by invitation NCT07752628

Safety Trial of F-60 Among Children Hospitalized With SAM

No phase Interventional Dietary Supplementation Severe Acute Malnutrition Children

For patients and families

In plain language

An automatic summary of structured registry data. It is an orientation aid, not a substitute for the official protocol or a physician assessment.

What is being studied
The protocol lists: F75 milk feeds, F60 milk feeds.
Who it may be relevant to
Registry conditions: Dietary Supplementation, Severe Acute Malnutrition, Children. Basic parameters: 6 months — 59 months · All.
What needs checking
Age, condition and sex are only basic indicators. Prior treatment, laboratory values and other mandatory requirements appear in the eligibility criteria below.
Where it takes place
Bangladesh
Next step
Save the trial, show it to the treating physician, and confirm current recruitment with the study center. Costs, documents and travel →
Official title

Safety Trial of F-60 Among Children Hospitalized With Severe Acute Malnutrition

Overview

The current WHO-recommended F-75 diet for stabilization of SAM has remained largely unchanged since its development in the 1990s. No clinical trial has studied enhanced therapeutic formulas during the stabilization phase, particularly in high-burden, low-resource settings. Additionally, the current F75 nutritional formula was based only on expert opinion, not scientific evidence. Evidence suggests that modifying the nutrient profile of stabilization formulas may improve survival, reduce complications such as refeeding syndrome, and enhance early recovery. A better stabilization formula for these medically fragile children has the potential to reduce mortality. The purpose of this randomized controlled clinical trial (RCT) is to test the hypothesis that an enhanced nutrient fortified therapeutic stabilization formula (F-60) will improve outcomes for children hospitalized with SAM, relative to the current standard of care (F-75). Hypothesis: The main hypothesis of this safety study is that F-60 is not inferior to F-75. Objectives: To test this hypothesis, Investigators will pursue two specific aims. Aim 1: to assess laboratory outcomes in children stabilized with F-60. Aim 2: to assess clinical outcomes in children who receive F-60.

Detailed description

Outcomes for children with SAM have improved over the past 20 years. Community-based treatment programs and RUTF are making an impact. However, outcomes lag for hospitalized children with SAM. In many settings, more than 10% of these children die. Inpatient outcomes for children with SAM may be improved by more precisely matching the nutritional composition of the formula that is provided during stabilization to the unique nutritional requirements of children hospitalized with SAM. Specifically, modifying the nutrient profile of stabilization formula may reduce mortality, by reducing risk for complications such as refeeding syndrome, while supporting earlier recovery.

Therapeutic formulas for treating SAM were developed gradually, over the course of several decades. A basic goal of stabilizing care is to limit subsequent risk for refeeding syndrome, which occurs most often when the extra energy and protein needed for catch-up growth are introduced. The current standard of care stabilization formula, F-75, was developed to replenish electrolytes and to correct metabolic abnormalities. F-75 was formalized by WHO in 1999. Since then, widening access to community-based treatment programs for SAM has altered patient volume and acuity on malnutrition wards. Fewer children are now hospitalized for SAM. However, the total global requirement for for F-75 continues to grow, with stockouts now increasingly frequent.This may be partly due to increased acuity and length of stay among children with SAM who need hospitalization. An improved stabilization formula has the potential to improve outcomes for these medically fragile children, while also reducing costs by shortening the average length of stay.

F-60 is a novel therapeutic formula intended, like F-75, for children with SAM who need inpatient stabilization. Data on the energy requirements and optimal nutrient composition of therapeutic feeds have remained limited since their original development in the 1980s-1990s. The nutritional profile of F-60 reflects recent clinical evidence and regulatory guidance ensuring consistency with the most current scientific and regulatory recommendations. F-60 contains less energy (60 kcal/100ml) than F-75 (77 kcal/100ml). F-60 also contains greater concentrations of particular vitamins, minerals, methyl donors, and amino acids. From a regulatory standpoint, F-60 is a 'formula for special medical purposes'. It has not yet been tested in children. In this respect, F-60 is an investigational product. Much has been learned about malnutrition since F-75 was conceptualized more than 40 years ago. In developed settings, strategies to prevent refeeding syndrome are now increasingly nuanced. The design of F-60 reflects these recent insights, including one-carbon dysfunction, intestinal barrier dysfunction, metabolic recovery and risk of refeeding syndrome.

The trial proposed here aims to assess the biochemical and clinical safety of F-60, relative to the current standard of care, F-75.

The nutrient profile of F-60 has been meticulously formulated for this trial. F-60 contains less energy than F-75, which provides 77 kcal/100 ml, exceeding the Codex maximum of 70 kcal/100 ml. (8) Total energy content of F-60 reflects the Codex minimum (60 kcal/100 ml). This change aims to match the measured median resting energy expenditure in most children with SAM (≈78 kcal/kg/day). The reduction of energy in F-60 is achieved mainly by reducing the carbohydrate content. F-60 is fortified with essential amino acids. F-60 contains more milk protein and five essential amino acids that are particularly limiting in the diets that are associated with SAM: lysine, methionine, cysteine, threonine, and tryptophan. F-60 contains greater concentrations of certain electrolytes relative to F-75. These changes are intended to reduce the risk of cardiac conduction disturbances by more quickly repleting diminished electrolyte stores, a frequent occurrence in SAM. Potassium deficiency is common in SAM. Potassium is increased in F-60. F-75 contains 145 mg of potassium per 100 ml. F-60 provides 200 mg per 100 ml. The total phosphorus content of F-60 is comparable, providing \~ 117 mg/kg/day. The increased phosphorous content of F-75 is designed to more effectively replenish phosphorus stores. Magnesium depletion increases risk for cardiac arrhythmias during refeeding. F-60 provides more magnesium (23.4 mg/kg/day) than F-75 (12.3 mg/kg/day), when children are treated with a standard feed volume (ie, 130 ml/kg/day). F-60 incorporates modest trace mineral adjustments. These changes aim to ensure comparable intake between children consuming F-75 and F-60. Some moderate increases in F-60 reflect the greater inclusion of milk powder in F-60, which contains multiple trace minerals. F-60 provides increased amounts of water-soluble vitamins; B vitamins and vitamin C. These changes aim to support quicker metabolic recovery during stabilization. Thiamine (B1) is increased in F-60. Acute thiamine deficiency causes severe morbidity. Riboflavin (B2) is increased in F-60. Riboflavin supports energy metabolism and plays a vital role in one-carbon movement by supporting folate regeneration. Vitamin B3 (nicotinamide) is increased in F-60. B3 content in F-60 is increased to levels shown to support immune function. Pantothenic Acid (B5) is increased in F-60. Pantothenic acid is required for the synthesis of coenzyme A and acyl carrier protein. Both are essential for lipid metabolism. Pyridoxine (B6) is increased in F-60, providing \~0.32 mg/kg/day. Biotin (B7) is increased in F-60. Biotin is a coenzyme for carboxylases involved in fatty acid metabolism and keratin synthesis. Folate (B9) is increased in F-60. Folate is essential for one-carbon metabolism. It supports the transfer of methyl groups in the folate cycle. Cobalamin (B12) is increased in F-60: It supports two key enzymes: methylmalonyl-CoA mutase and methionine synthase, both essential for energy metabolism and one-carbon flux. Vitamin C is increased in F-60. Children who develop SAM often consume diets largely devoid of fresh fruits and vegetables, containing limited amounts of vitamin C. F-75 contains fat-soluble vitamins at levels adequate for age-specific nutritional requirements. F-60 preserves this standard for vitamins A, D, and E, with adjustments limited to ensuring intake that is comparable with F-75. In contrast, vitamin K content is increased in F-60. Carnitine, inositol, and taurine supplemented in F60 according to to current Codex Alimentarius guidelines. Choline is increased in F-60. The additional choline in F-60 aims to support cell membrane renewal, one-carbon function, and efficient energy metabolism during stabilization of SAM.

Interventions

  • Dietary supplement F75 milk feeds
    Standard 'F75' (77 kcal/100 ml) provides 95 kcal/kg/day
  • Dietary supplement F60 milk feeds
    F-60 contains 60 kcal/100ml, and provides 78 kcal/kg/day

Primary outcome measures

  • Comparing clinical and biochemical safety of F60 and F75 [Time frame: Primary outcome is a clinical composite consisting of clinical and laboratory-based parameters. Multiple outcomes included in this composite score will be recorded "from the time of randomization up until completion of hospitalization or up to 14 days".]
Secondary outcome measures (9)
  • Death during hospitalization [Time frame: The period of observation will extend from randomization until the time of discharge from the hospital. The average time frame will reflect "the average duration of hospitalization, 5-6 days, with most hospitalizations completed within 14 days".]
  • Abnormal laboratory indices at 48 hours [Time frame: Measured laboratory parameters will be assessed at 48 hours after randomization and then every 48 hours until scheduled lab draws cease, up to a maximum of 144 hours after randomization (e.g. < 7 days).]
  • Time to Complete Transition to Ready-to-Use Therapeutic Food (RUTF) [Time frame: The average time frame to complete stabilization is expected to be 4 to 5 days. The maximum duration is 7 days, beyond which point a child who fails to complete transition to RUTF will be assigned an outcome of "delayed transition."]
  • Time to resolve diarrhoea after enrollment [Time frame: The time until resolution of loose stools is expected to be less than 7 days (4 to 5 on average). Children whose diarrhea does not resolve before 7 days will be recorded as having prolonged diarrhea]
  • Escalation of care to the ICU [Time frame: The expected time frame of observation will be "from randomization to discharge, which is, on average, 7 days".]
  • Hypoglycaemia during stabilization [Time frame: From randomization until initiation of transition to ready to use therapeutic food, with an expected average observation time frame of 3 to 5 days.]
  • Increase in PEWS score and low blood pressure [Time frame: From randomization to discharge, which is on average 7 days.]
  • Hospital-acquired infection [Time frame: From "randomization to discharge, and any readmission within 3 days after discharge".]
  • Need for electrolyte replacement [Time frame: From randomization to 48 hours after enrollment]

Eligibility criteria

Inclusion criteria

  • Age 6 to 59 months.
  • Severe Acute Malnutrition (WHZ <-3 z-scores of the median WHO growth standards and/or MUAC <11.5 cm or bilateral pitting nutritional edema).
  • Received a maximum of 2 feeds of F75 (or milk suzi) at the time of enrolment.
  • Primary caregiver is able to provide written or witnessed informed consent.

Exclusion criteria

  • Congenital heart disease
  • A known or suspected diagnosis of tuberculosis at the time of screening
  • Anatomic abnormalities of the gastrointestinal tract
  • Cancer
  • Spastic cerebral palsy, hydrocephalus,
  • Haemoglobinopathies.
  • Children weigh more than 16 kg
  • Diarrhea lasting more than 14 days prior to hospitalization.
  • Children who require invasive critical care (ie, mechanical ventilation, continuous positive airway pressure (CPAP) >5 cm H2O, or >1 inotrope for BP support) will be ineligible. Informed written consent will be obtained from the child's guardian, following local practices.

Criteria are shown verbatim from the registry (in English). Final eligibility is always assessed by the study center.

Healthy volunteers: No

Study design

Allocation
Randomized
Model
Parallel assignment
Masking
Open label
Primary purpose
Treatment

Study locations

Bangladesh · 1 center
  • Icddr,B — Dhaka

Publications

  • Tickell KD, Mangale DI, Tornberg-Belanger SN, Bourdon C, Thitiri J, Timbwa M, Njirammadzi J, Voskuijl W, Chisti MJ, Ahmed T, Shahid ASMSB, Diallo AH, Ouedrago I, Khan AF, Saleem AF, Arif F, Kazi Z, Mupere E, Mukisa J, Sukhtankar P, Berkley JA, Walson JL, Denno DM; Childhood Acute Illness and Nutrition Network. A mixed method multi-country assessment of barriers to implementing pediatric inpatient PMID 30908499
  • Bandsma RHJ, Voskuijl W, Chimwezi E, Fegan G, Briend A, Thitiri J, Ngari M, Mwalekwa L, Bandika V, Ali R, Hamid F, Owor B, Mturi N, Potani I, Allubha B, Muller Kobold AC, Bartels RH, Versloot CJ, Feenstra M, van den Brink DA, van Rheenen PF, Kerac M, Bourdon C, Berkley JA. A reduced-carbohydrate and lactose-free formulation for stabilization among hospitalized children with severe acute malnutriti PMID 30807589
  • Afroze F, Khoshnevisan F, Harawa PP, Islam Z, Bourdon C, Khoswe S, Islam M, Sarker SA, Islam F, Sayeem Bin Shahid ASM, Joosten K, Hulst JM, Eneya C, Walson JL, Berkley JA, Potani I, Voskuijl W, Ahmed T, Chisti MJ, Bandsma RHJ. Trajectories of resting energy expenditure and performance of predictive equations in children hospitalized with an acute illness and malnutrition: a longitudinal study. Sci PMID 38351162
  • Childhood Acute Illness and Nutrition (CHAIN) Network. Characterising paediatric mortality during and after acute illness in Sub-Saharan Africa and South Asia: a secondary analysis of the CHAIN cohort using a machine learning approach. EClinicalMedicine. 2023 Feb 6;57:101838. doi: 10.1016/j.eclinm.2023.101838. eCollection 2023 Mar. PMID 36825237
  • Cussotto S, Delgado I, Anesi A, Dexpert S, Aubert A, Beau C, Forestier D, Ledaguenel P, Magne E, Mattivi F, Capuron L. Tryptophan Metabolic Pathways Are Altered in Obesity and Are Associated With Systemic Inflammation. Front Immunol. 2020 Apr 15;11:557. doi: 10.3389/fimmu.2020.00557. eCollection 2020. PMID 32351500
  • Talbert A, Thuo N, Karisa J, Chesaro C, Ohuma E, Ignas J, Berkley JA, Toromo C, Atkinson S, Maitland K. Diarrhoea complicating severe acute malnutrition in Kenyan children: a prospective descriptive study of risk factors and outcome. PLoS One. 2012;7(6):e38321. doi: 10.1371/journal.pone.0038321. Epub 2012 Jun 4. PMID 22675542
  • Sturgeon JP, Mufukari W, Tome J, Dumbura C, Majo FD, Ngosa D, Chandwe K, Kapoma C, Mutasa K, Nathoo KJ, Bourke CD, Ntozini R, Bwakura-Dangarembizi M, Amadi B, Kelly P, Prendergast AJ; HOPE-SAM study team. Risk factors for inpatient mortality among children with severe acute malnutrition in Zimbabwe and Zambia. Eur J Clin Nutr. 2023 Sep;77(9):895-904. doi: 10.1038/s41430-023-01320-9. Epub 2023 Aug PMID 37553508
  • Vresk L, Flanagan M, Daniel AI, Potani I, Bourdon C, Spiegel-Feld C, Thind MK, Farooqui A, Ling C, Miraglia E, Hu G, Wen B, Zlotkin S, James P, McGrath M, Bandsma RHJ. Micronutrient status in children aged 6-59 months with severe wasting and/or nutritional edema: implications for nutritional rehabilitation formulations. Nutr Rev. 2025 Jan 1;83(1):112-145. doi: 10.1093/nutrit/nuad165. PMID 38350491

Identifiers

NCT: NCT07752628 · PR- 25-014

Primary sources (government registries)

View this study on ClinicalTrials.gov ↗