About this trial
Plasmodium vivax is the most geographically widespread malaria species and the second largest contributor to symptomatic malaria worldwide. It accounts for half of all malaria cases outside Africa, with an estimated 14.3 million clinical vivax malaria cases reported annually, contributing to an annual cost of US$359 million. Children are most vulnerable to infection, with P. vivax prevalence peaking between 2 to 6 years of age. In Papua New Guinea (PNG), there are \>1.5 million suspected P. vivax cases annually, and while P. falciparum infections are the most prevalent, P. vivax transmission is the most intense in the world. P. vivax in PNG provides a unique epidemiological setting in which to assess innovative treatments in children.
The complex biology of P. vivax represents a challenge for malaria control and chemotherapy, especially dormant liver-stage parasites (hypnozoites) which can reactivate (relapse) and cause disease at a time remote from the primary infection. Hypnozoite relapse is the primary cause of vivax malaria in endemic regions and is resistant to most antimalarial drugs. Identifying effective treatments for radical cure, the complete elimination of parasites (both blood- and liver-stage), is therefore a priority. The World Health Organization (WHO) recommends a 14-day radical cure regimen for uncomplicated vivax malaria; comprised of blood stage treatment (chloroquine or artemisinin combination therapy (ACT)) and 14 days of the 8-aminoquinoline drug primaquine (PQ; 0.25-0.5 mg/kg/day) for liver-stage cure. More recently, the 8-aminoquinoline tafenoquine has garnered interest as an alternative radical cure agent to primaquine. However, there is limited data on the pharmacokinetics, tolerability and radical cure efficacy of tafenoquine in children.
The overall aim of the study is to characterise the pharmacokinetic profile of tafenoquine (and primary metabolite) in Papua New Guinean children.
Eligibility criteria
This trial accepts healthy volunteersQualifiers
have a normal glucose-6-phosphate-dehydrogenase (G6PD) activity (>70% enzyme activity) as confirmed by quantitative SD Biosensor
are Rapid Diagnostic Test negative for malaria
have not received treatment with any antimalarial in the previous 4-weeks
have no signs or symptoms of significant morbidity
Disqualifiers
have G6PD activity <70%
test positive for malaria by rapid diagnostic test
have receive treatment with an antimalarial in the previous 4-weeks
have signs or symptoms of significant morbidities
Trial design
Parallel
Treatments tested in this trial
Single dose tafenoquine (10 mg/kg) given with water
DrugParticipants will receive single-dose TQ as 10 mg/kg taken with water and a low-fat meal (3 plain cracker biscuits; 2% fat). Food (low-fat meal) is taken with both regimens to attenuate any gastrointestinal adverse effects that are related to taking TQ on an empty stomach. Combinations of full or half-tablets will be swallowed whole or crushed lightly (tablets) or dissolved in boiled water (if dispersible tablets are available), as directly observed treatment. Children vomiting within the first 30 minutes of treatment will be withdrawn
Single dose tafenoquine (10 mg/kg) given with fat
DrugSingle-dose TQ as 10 mg/kg taken with 250 mL chocolate flavoured milk (9% fat) and a low-fat meal (3 plain cracker biscuits). Food (low-fat meal) is taken with both regimens to attenuate any gastrointestinal adverse effects that are related to taking TQ on an empty stomach. Combinations of full or half-tablets will be swallowed whole or crushed lightly (tablets) or dissolved in boiled water (if dispersible tablets are available), as directly observed treatment. Children vomiting within the first 30 minutes of treatment will be withdrawn
Treatment groups
Trial outcomes
Primary outcomes
Pharmacokinetic: Distribution half-life
Pharmacokinetic parameters of tafenoquine and 5,6-orthoquinone tafenoquine, will be ascertained using a nonlinear mixed-effects modelling approach (NONMEM), based on drug concentrations determined from venous blood samples collected at baseline (Day 0), 2, 4, 8, 12, 18, 24, 36 and 48 hours from a sampling cannula with capillary finger-prick samples at Days 3, 4, 7, 14, 28, 42 and 56.
Pharmacokinetic: Terminal elimination half-life
Pharmacokinetic: Absorption half-life
Pharmacokinetics: Clearance
Secondary outcomes
Safety: Change in haemoglobin over 28 days
After admission, baseline demographic details (age, weight, height) and a detailed clinical history will be taken. All participants will then undergo a full clinical assessment, documenting axillary temperature, heart and respiration rate, and methaemoglobin level (pulse oximetry; Rad57 pulse oximeter with SpMet% function). A blood sample will be drawn prior to drug administration via the cannula for baseline laboratory tests (safety analysis) and genotyping, including: i) Haemoglobin and blood glucose ii) Dipstick urinalysis iii) Resting 12-lead electrocardiogram for rate-corrected QT interval iv) 250 μL blood sample for CYP2D6 genotyping v) Reticulocyte count vi) Hepatorenal function Safety testing, including collection of a 100 μL blood sample for hepatorenal function tests (ALT, total bilirubin and creatinine), haemoglobin, methaemoglobin, urine dipstick analysis (blood, protein and glucose), and an electrocardiogram trace, will be taken at 4, 12, 24 hrs, and on Days 3, 7 and 28.
Safety: Change in methaemoglobin over 28 days
Safety: Change in hepatorenal function over 7 days
Safety: Change in rate corrected QTc over 28 days
Sponsors and contacts
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Curtin University
Lead sponsor
Papua New Guinea Institute of Medical Research
Collaborator
The University of Western Australia
Collaborator