Proguanil 25mg / Atovaquone 62.5mg tablets
Requires a prescription from a doctor or prescriber
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The MHRA Yellow Card scheme collects reports of suspected side effects from healthcare professionals and patients. View the Drug Analysis Profile (iDAP) for real-world adverse reaction data.
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Data from the MHRA Yellow Card scheme. A reported reaction does not necessarily mean the medicine caused it. Contains public sector information licensed under the Open Government Licence v3.0.
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5 branded products available
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Malarone Paediatric 62.5mg/25mg tablets
Proguanil 25mg / Atovaquone 62.5mg tablets
Proguanil 25mg / Atovaquone 62.5mg tablets
This is the NHS Drug Tariff indicative price used for reimbursement purposes. It may not reflect the price paid by patients or pharmacies.
View full Drug TariffSource: NHS Drug Tariff via NHSBSA. Derived from dm+d VMPP (Virtual Medicinal Product Pack) pricing data. Contains public sector information licensed under the Open Government Licence v3.0.
Therapeutically similar medicines
Similarity is based on WHO Anatomical Therapeutic Chemical (ATC) classification and on a factual NHS dm+d therapeutic-grouping code prefix. Source data: NHS dm+d via TRUD (OGL v3.0), WHO ATC/DDD Index.
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SNOMED CT and dm+d codes from NHS TRUD (Technology Reference data Update Distribution), licensed under the Open Government Licence v3.0. ATC codes from the WHO Collaborating Centre for Drug Statistics Methodology (whocc.no).
Active and completed clinical studies from ClinicalTrials.gov
Source: ClinicalTrials.gov, a database of the U.S. National Library of Medicine (NLM), National Institutes of Health (NIH). Data accessed via ClinicalTrials.gov API v2. Trial information is provided for research purposes and does not constitute medical advice.
Academic studies and reviews for this medicine's active substance
Showing the 50 most relevant studies.
Reviews & meta-analyses: 13 · Randomised trials: 5 · 1996–2026
Showing the 50 most relevant studies, sorted by most relevant.
Jerroll Septian Tammubua, M. K. W. Giri, Made Ayu Rahayu Agastyane Rahmadewi, et al.
JIMKI: Jurnal Ilmiah Mahasiswa Kedokteran Indonesia, 2025
H. Staines, R. Burrow, B. Teo, et al.
Journal of Antimicrobial Chemotherapy, 2017
K. Andrejko, Romana C Mayer, S. Kovacs, et al.
Travel medicine and infectious disease, 2019
Agobé JCD, Maïga-Ascofaré O, Adegnika AA, et al.
2026
- Malaria, Falciparum
- Artemisinins
- Fosfomycin
J. Schnyder, Hanna K. de Jong, Emmanuel B Bache, et al.
Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases, 2025
Indresh K. Srivastava, Akhil B. Vaidya
Antimicrobial Agents and Chemotherapy, 1999
M. Wojnarski, Chanthap Lon, P. Vanachayangkul, et al.
Open forum infectious diseases, 2019
S. Chalon, M. F. Chughlay, Nada Abla, et al.
Clinical Pharmacology and Therapeutics, 2021
Rachida Tahar, Talleh Almelli, Camille Debue, et al.
The Journal of Infectious Diseases, 2014
Abebe W, Woldesenbet D
2025
Malaria is an infectious disease caused by parasitic protozoans of the genus Plasmodium. Malaria control efforts on a global scale are in danger due to the emergence and spread of drug-resistant malaria. Despite stakeholders' dedication to the prevention and treatment of malaria, the current state of global health does not offer an effective answer to the issue of drug resistance. Furthermore, there is an information gap about the molecular mechanisms of Plasmodium falciparum's drug resistance, which makes it difficult to develop monitoring systems. Most countries lack adequate and comprehensive information on antimalarial drug efficacy. Plasmodium falciparum has developed resistance to almost all anti-malarial drugs, which poses a significant danger to malaria control worldwide. The fundamental mechanism of artemisinin resistance is due to point mutations in the beta-propeller domain of the gene encoding Kelch protein 13. Atovaquone resistance can be caused by a variety of mutations in the cytochrome b gene, with the majority of mutations affecting the protein's ubiquinol binding site. Similarly, mutations in the Plasmodium falciparum chloroquine resistance transporter, Plasmodium falciparum multi-drug resistance 1, and an increase in Plasmodium falciparum Plasmepsin II and III copy numbers all lead to 4-aminoquinoline drug resistance. Also, the number of amino acid substitutions in dihydrofolate reductase and dihydropteroate synthase is correlated with the degree of antifolate drug resistance. Moreover, amino alcohol drug resistance is caused by Plasmodium falciparum multidrug resistance protein 1 and Plasmodium falciparum Na+/H + exchanger 1 mutations. In general, Plasmodium falciparum chloroquine resistance transporter, Plasmodium falciparum multidrug resistance protein 1, Plasmodium falciparum Na+/H + exchanger 1, plasmepsin II & III, cytochrome b gene, dihydrofolate reductase, Plasmodium falciparum ATPases 6, Plasmodium falciparum Kelch protein 13, and dihydropteroate synthase were just the molecular markers of drug resistance of Plasmodium falciparum. Future research on the molecular mechanisms of drug resistance in P. falciparum should focus on significant area including using transcriptomic and genomic technologies to identify genetic variations associated with resistance. Finding the protein interactions that underlie these resistance mechanisms requires proteomic research. Additionally, the possibility of resistance development may be decreased by investigating combination therapies that target several phases of the P. falciparum lifecycle. In order to successfully address drug resistance in malaria, it will be essential to strengthen worldwide monitoring systems and promote interdisciplinary collaboration among researchers and healthcare professionals. Furthermore, regular monitoring, identification, and limiting of drug-resistant P. falciparum strains through in vivo efficacy tests, in vitro tests, combination therapy, molecular techniques, and appropriate policies must continue to ensure the effectiveness of malaria treatment.
Abstract licence: CC BY
Sources: aggregated from Europe PMC (EMBL-EBI), OpenAlex, Crossref, PubMed and other open scholarly databases. Retracted articles are excluded. Study information is provided for research purposes and does not constitute medical advice.
Scientific data (pharmacology, interactions, ADME) is not yet available for this medicine. Clinical sections are sourced from the NHS dm+d database.