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Largest genome-wide study of parasite provides clearest picture yet of genetic changes driving artemisinin resistance artemisinin-genetics-resistance. Hinxton, Cambridge, UK, 19 January 2015 – The largest genome-wide association study to date of the malaria parasite Plasmodium falciparum unveils a complex genetic architecture that enables the parasite to develop resistance to our most effective antimalarial drug, artemisinin.

Maps of South East Asia showing drug resistance to antimalarials

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Arman BY. et al, (2026), International Journal of Pharmaceutics: X, 11, 100467 - 100467

Rickettsial seropositivity in Lao PDR smallholder livestock farms: Implications for animal and human health.

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Burden of chronic respiratory disease in Asia, 1990–2023: a systematic analysis for the Global Burden of Disease Study 2023

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Jo H. et al, (2026), The Lancet Respiratory Medicine, 14, 233 - 255

Impact of an electronic clinical decision support algorithm (eCDSA) on antibiotic prescribing in primary care in Cambodia: A cluster randomised controlled trial

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Wynberg E. et al, (2026), International Journal of Infectious Diseases, 164, 108382 - 108382

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Data reuse in global health: perspectives from actors in policy, funding and research

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Comparison of CD4 T cell response in Plasmodium falciparum and vivax malaria

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ddressing pandemic-wide systematic errors in the SARS-CoV-2 phylogeny

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Hunt M. et al, (2026), Nature Methods

Rapid diagnosis of skin and soft tissue melioidosis in children

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Suy K. et al, (2026), PLOS Neglected Tropical Diseases, 20, e0013962 - e0013962

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