Parasites

Displaying 1 - 9 of 9CSV
Hagenah, L. M., Dhingra, S. K., Small-Saunders, J. L., Qahash, T., Willems, A., Schindler, K. A., Rangel, G. W., Gil-Iturbe, E., Kim, J., Akhundova, E., Yeo, T., Okombo, J., Mancia, F., Quick, M., Roepe, P. D., Llinás, M., & Fidock, D. A. (2024). Additional PfCRT mutations driven by selective pressure for improved fitness can result in the loss of piperaquine resistance and altered Plasmodium falciparum physiology. MBio, 15(1). https://doi.org/10.1128/mbio.01832-23
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Stadler, E., Maiga, M., Friedrich, L., Thathy, V., Demarta-Gatsi, C., Dara, A., Sogore, F., Striepen, J., Oeuvray, C., Djimdé, A. A., Lee, M. C. S., Dembélé, L., Fidock, D. A., Khoury, D. S., & Spangenberg, T. (2023). Propensity of selecting mutant parasites for the antimalarial drug cabamiquine. Nature Communications, 14(1). https://doi.org/10.1038/s41467-023-40974-8
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Kümpornsin, K., Kochakarn, T., Yeo, T., Okombo, J., Luth, M. R., Hoshizaki, J., Rawat, M., Pearson, R. D., Schindler, K. A., Mok, S., Park, H., Uhlemann, A.-C., Jana, G. P., Maity, B. C., Laleu, B., Chenu, E., Duffy, J., Moliner Cubel, S., Franco, V., … Lee, M. C. S. (2023). Generation of a mutator parasite to drive resistome discovery in Plasmodium falciparum. Nature Communications, 14(1). https://doi.org/10.1038/s41467-023-38774-1
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Mok, S., Yeo, T., Hong, D., Shears, M. J., Ross, L. S., Ward, K. E., Dhingra, S. K., Kanai, M., Bridgford, J. L., Tripathi, A. K., Mlambo, G., Burkhard, A. Y., Ansbro, M. R., Fairhurst, K. J., Gil-Iturbe, E., Park, H., Rozenberg, F. D., Kim, J., Mancia, F., … Fidock, D. A. (2023). Mapping the genomic landscape of multidrug resistance in Plasmodium falciparum and its impact on parasite fitness. Science Advances, 9(45). https://doi.org/10.1126/sciadv.adi2364
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Okombo, J., Mok, S., Qahash, T., Yeo, T., Bath, J., Orchard, L. M., Owens, E., Koo, I., Albert, I., Llinás, M., & Fidock, D. A. (2022). Piperaquine-resistant PfCRT mutations differentially impact drug transport, hemoglobin catabolism and parasite physiology in Plasmodium falciparum asexual blood stages. PLOS Pathogens, 18(10), e1010926. https://doi.org/10.1371/journal.ppat.1010926
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Xu, Y., Zhou, Z., Brooks, B., Ferguson, T., Obliosca, J., Huang, J., Kaneko, I., Iwanaga, S., Yuda, M., Tsuji, Y., Zhang, H., Luo, C. C., Jiang, X., Kong, X.-P., Tsuji, M., & Tison, C. K. (2022). Layer-by-Layer Delivery of Multiple Antigens Using Trimethyl Chitosan Nanoparticles as a Malaria Vaccine Candidate. Frontiers in Immunology, 13. https://doi.org/10.3389/fimmu.2022.900080
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Christensen, P., Racklyeft, A., Ward, K. E., Matheson, J., Suwanarusk, R., Chua, A. C. Y., Kaneko, O., Aung, H. L., Rénia, L., Amanzougaghene, N., Magneron, V., Lemaitre, J., Le Grand, R., Kyle, D., Bifani, P., Cook, G. M., Snounou, G., & Russell, B. (2022). Improving in vitro continuous cultivation of Plasmodium cynomolgi, a model for P. vivax. Parasitology International, 89, 102589. https://doi.org/10.1016/j.parint.2022.102589
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