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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.

5 maps of South East Asia showing various genetic markers of malaria resistance

Engaging youth in health and research in rural Cambodia: a qualitative study.

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Ean M. et al, (2026), Global health action, 19

The coronaviral landscape across diverse mammalian species in the Northeastern United States

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Ibemgbo S. et al, (2026), Scientific Reports, 16

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Onah IS., (2026), Nonlinear Analysis: Real World Applications, 91, 104584 - 104584

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McBride A. et al, (2026), Open Forum Infectious Diseases

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The burden of antimicrobial-resistant bacterial infections: a causal perspective

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Lim C. et al, (2026), Nature Communications, 17

Laboratory-Acquired Malaria Infections: Exposure Mechanisms and Biosafety Implications

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Blacksell SD. et al, (2026), Applied Biosafety

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Thi HN. et al, (2026), International Journal of Infectious Diseases, 168, 108673 - 108673

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