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Karlsson, Elinor K

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Karlsson

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Elinor K

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Karlsson, Elinor K

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Now showing 1 - 4 of 4
  • Publication

    Identification and Functional Validation of the Novel Antimalarial Resistance Locus PF10_0355 in Plasmodium falciparum

    (Public Library of Science, 2011) Van tyne, Daria; Park, Daniel John; Schaffner, Stephen; Neafsey, Daniel; Angelino, Elaine Lee; Cortese, Joseph F.; Barnes, Kayla G.; Rosen, David M.; Lukens, Amanda; Daniels, Rachel; Milner, Danny; Johnson, Charles A.; Shlyakhter, Ilya; Grossman, Sharon; Becker, Justin S.; Yamins, Daniel Louis Kanef; Karlsson, Elinor K; Ndiaye, Daouda; Sarr, Ousmane; Mboup, Souleymane; Happi, Christian; Furlotte, Nicholas A.; Eskin, Eleazar; Kang, Hyun Min; Hartl, Daniel; Birren, Bruce W.; Wiegand, Roger; Lander, Eric; Wirth, Dyann; Volkman, Sarah; Sabeti, Pardis

    The Plasmodium falciparum parasite's ability to adapt to environmental pressures, such as the human immune system and antimalarial drugs, makes malaria an enduring burden to public health. Understanding the genetic basis of these adaptations is critical to intervening successfully against malaria. To that end, we created a high-density genotyping array that assays over 17,000 single nucleotide polymorphisms (~1 SNP/kb), and applied it to 57 culture-adapted parasites from three continents. We characterized genome-wide genetic diversity within and between populations and identified numerous loci with signals of natural selection, suggesting their role in recent adaptation. In addition, we performed a genome-wide association study (GWAS), searching for loci correlated with resistance to thirteen antimalarials; we detected both known and novel resistance loci, including a new halofantrine resistance locus, PF10_0355. Through functional testing we demonstrated that PF10_0355 overexpression decreases sensitivity to halofantrine, mefloquine, and lumefantrine, but not to structurally unrelated antimalarials, and that increased gene copy number mediates resistance. Our GWAS and follow-on functional validation demonstrate the potential of genome-wide studies to elucidate functionally important loci in the malaria parasite genome.

  • Publication

    A Composite of Multiple Signals Distinguishes Causal Variants in Regions of Positive Selection

    (American Association for Advancement of Science, 2010) Shylakhter, Ilya; Karlsson, Elinor K; Byrne, Elizabeth; Morales, Shannon; Frieden, Gabriel; Hostetter, Elizabeth; Angelino, Elaine Lee; Garber, Manuel; Zuk, Or; Lander, Eric; Schaffner, Stephen; Sabeti, Pardis; Grossman, Sharon

    The human genome contains hundreds of regions whose patterns of genetic variation indicate recent positive natural selection, yet for most the underlying gene and the advantageous mutation remain unknown. We developed a method, composite of multiple signals (CMS), that combines tests for multiple signals of selection and increases resolution by up to 100-fold. By applying CMS to candidate regions from the International Haplotype Map, we localized population-specific selective signals to 55 kilobases (median), identifying known and novel causal variants. CMS can not just identify individual loci but implicates precise variants selected by evolution.

  • Publication

    Identifying Recent Adaptations in Large-Scale Genomic Data

    (Elsevier BV, 2013) Grossman, Shamai; Andersen, Kristian G; Shlyakhter, Ilya; Tabrizi, Shervin; Winnicki, Sarah; Yen, Angela; Park, Daniel J.; Griesemer, Dustin; Karlsson, Elinor K; Wong, Sunny H.; Cabili, Moran; Adegbola, Richard A.; Bamezai, Rameshwar N.K.; Hill, Adrian V.S.; Vannberg, Fredrik O.; Rinn, John; Lander, Eric; Schaffner, Stephen; Sabeti, Pardis

    Summary: Although several hundred regions of the human genome harbor signals of positive natural selection, few of the relevant adaptive traits and variants have been elucidated. Using full-genome sequence variation from the 1000 Genomes (1000G) Project and the composite of multiple signals (CMS) test, we investigated 412 candidate signals and leveraged functional annotation, protein structure modeling, epigenetics, and association studies to identify and extensively annotate candidate causal variants. The resulting catalog provides a tractable list for experimental follow-up; it includes 35 high-scoring nonsynonymous variants, 59 variants associated with expression levels of a nearby coding gene or lincRNA, and numerous variants associated with susceptibility to infectious disease and other phenotypes. We experimentally characterized one candidate nonsynonymous variant in Toll-like receptor 5 (TLR5) and show that it leads to altered NF-κB signaling in response to bacterial flagellin.

  • Publication

    Natural Selection in a Bangladeshi Population from the Cholera-Endemic Ganges River Delta

    (American Association for the Advancement of Science (AAAS), 2013) Karlsson, Elinor K; Harris, J. B.; Tabrizi, Shervin; Rahman, A.; Shlyakhter, Ilya; Patterson, N.; O, C.; Schaffner, Stephen; Gupta, S.; Chowdhury, F.; Sheikh, A.; Shin, O. S.; Ellis, C.; Becker, C. E.; Stuart, L. M.; Calderwood, Stephen; Ryan, Edward; Qadri, F.; Sabeti, Pardis; Larocque, Regina

    As an ancient disease with high fatality, cholera has likely exerted strong selective pressure on affected human populations. We performed a genome-wide study of natural selection in a population from the Ganges River Delta, the historic geographic epicenter of cholera. We identified 305 candidate selected regions using the composite of multiple signals (CMS) method. The regions were enriched for potassium channel genes involved in cyclic adenosine monophosphate–mediated chloride secretion and for components of the innate immune system involved in nuclear factor κB (NF-κB) signaling. We demonstrate that a number of these strongly selected genes are associated with cholera susceptibility in two separate cohorts. We further identify repeated examples of selection and association in an NF-κB/inflammasome–dependent pathway that is activated in vitro by Vibrio cholerae. Our findings shed light on the genetic basis of cholera resistance in a population from the Ganges River Delta and present a promising approach for identifying genetic factors influencing susceptibility to infectious diseases.