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Wohl, Shirlee

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Wohl

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Shirlee

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Wohl, Shirlee

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Now showing 1 - 5 of 5
  • Publication

    Genomic surveillance elucidates Ebola virus origin and transmission during the 2014 outbreak

    (American Association for the Advancement of Science (AAAS), 2014) Gire, Stephen K; Goba, A.; Andersen, Kristian G; Sealfon, R. S. G.; Park, D. J.; Kanneh, L.; Jalloh, S.; Momoh, M.; Fullah, M.; Dudas, G.; Wohl, Shirlee; Moses, L. M.; Yozwiak, Nathan; Winnicki, Sarah; Matranga, C. B.; Malboeuf, C. M.; Qu, J.; Gladden, Adrianne; Schaffner, Stephen; Yang, X.; Jiang, P.-P.; Nekoui, M.; Colubri, Andres; Coomber, M. R.; Fonnie, M.; Moigboi, A.; Gbakie, M.; Kamara, F. K.; Tucker, V.; Konuwa, E.; Saffa, S.; Sellu, J.; Jalloh, A. A.; Kovoma, A.; Koninga, J.; Mustapha, I.; Kargbo, K.; Foday, M.; Yillah, M.; Kanneh, F.; Robert, W.; Massally, J. L. B.; Chapman, S. B.; Bochicchio, J.; Murphy, C.; Nusbaum, C.; Young, S.; Birren, B. W.; Grant, D. S.; Scheiffelin, J. S.; Lander, Eric; Happi, Christian; Gevao, S. M.; Gnirke, A.; Rambaut, A.; Garry, R. F.; Khan, S. H.; Sabeti, Pardis

    In its largest outbreak, Ebola virus disease is spreading through Guinea, Liberia, Sierra Leone, and Nigeria. We sequenced 99 Ebola virus genomes from 78 patients in Sierra Leone to ~2000× coverage. We observed a rapid accumulation of interhost and intrahost genetic variation, allowing us to characterize patterns of viral transmission over the initial weeks of the epidemic. This West African variant likely diverged from central African lineages around 2004, crossed from Guinea to Sierra Leone in May 2014, and has exhibited sustained human-to-human transmission subsequently, with no evidence of additional zoonotic sources. Because many of the mutations alter protein sequences and other biologically meaningful targets, they should be monitored for impact on diagnostics, vaccines, and therapies critical to outbreak response.

  • Publication

    Zika virus evolution and spread in the Americas

    (SpringerNature, 2017) Metsky, Hayden C; Matranga, Christian B; Wohl, Shirlee; Schaffner, Stephen; Freije, Catherine; Winnicki, Sarah; West, Kendra L.; Qu, James; Baniecki, Mary; Gladden-Young, Adrianne; Lin, Aaron; Tomkins-Tinch, Christopher; Ye, Simon H; Park, Daniel; Luo, Cynthia; Barnes, Kayle; Shah, Rickey; Chak, Bridget; Barbosa-Lima, Giselle; Delatorre, Edson; Vieira, Yasmine R; Paul, Lauren M; Tan, Amanda L; Barcellona, Carolyn M; Porcelli, Mario C; Vasquez, Chalmers; Cannons, Andrew C; Cone, Marshall R; Hogan, Kelly N; Kopp, Edgar W; Anzinger, Joshua J; Garcia, Kimberly F; Parham, Leda A; Gelvez Ramirez, Rosa Margarita; Miranda Montoya, Maria Consuelo; Rojas, Diana P; Brown, Catherine M; Hennigan, Scott; Sabina, Brandon; Scotland, Sarah; Gangavarapu, Karthik; Grubaugh, Nathan D; Oliveira, Glenn; Robles-Sikisaka, Refugio; Rambaut, Andrew; Gehrke, Lee; Smole, Sandra; Halloran, M Elizabeth; Villar Centeno, Luis Angel; Mattar, Salim; Lorenzana, Ivette; Cerbino-Neto, Jose; Valim, Clarissa; Degrave, Wim; Bozza, Patricia T; Gnirke, Andreas; Andersen, Kristian G; Isern, Sharon; Michael, Scott; Bozza, Fernando A; Souza, Thiago ML; Bosch, Irene; Yozwiak, Nathan L; MacInnis, Bronwyn L; Sabeti, Pardis

    Despite great attention given to the recent Zika virus (ZIKV) epidemic in the Americas, much remains unknown about its epidemiology and evolution, in part due to a lack of genomic data. We applied multiple sequencing approaches to generate 100 ZIKV genomes from clinical and mosquito samples from 10 countries and territories, greatly expanding the observed viral genetic diversity from this outbreak. We analyzed the timing and patterns of introductions into distinct geographic regions, confirming phylogenetic evidence for the origin and rapid expansion of the outbreak in Brazil, and for multiple introductions from Brazil into Honduras, Colombia, Puerto Rico, other Caribbean islands, and the continental US. We find that ZIKV circulated undetected in many regions of the Americas for up to a year before the first locally transmitted cases were confirmed, highlighting the challenge of effective surveillance for this virus. We further characterize genetic variation across the outbreak to identify mutations with possible functional implications for ZIKV biology and pathogenesis.

  • Publication

    Ebola Virus Epidemiology and Evolution in Nigeria

    (Oxford University Press, 2016) Folarin, Onikepe A.; Ehichioya, Deborah; Schaffner, Stephen; Winnicki, Sarah; Wohl, Shirlee; Eromon, Philomena; West, Kendra L.; Gladden-Young, Adrianne; Oyejide, Nicholas E.; Matranga, Christian B.; Deme, Awa Bineta; James, Ayorinde; Tomkins-Tinch, Christopher; Onyewurunwa, Kenneth; Ladner, Jason T.; Palacios, Gustavo; Nosamiefan, Iguosadolo; Andersen, Kristian G.; Omilabu, Sunday; Park, Daniel J.; Yozwiak, Nathan; Nasidi, Abdusallam; Garry, Robert F.; Tomori, Oyewale; Sabeti, Pardis; Happi, Christian T.

    Containment limited the 2014 Nigerian Ebola virus (EBOV) disease outbreak to 20 reported cases and 8 fatalities. We present here clinical data and contact information for at least 19 case patients, and full-length EBOV genome sequences for 12 of the 20. The detailed contact data permits nearly complete reconstruction of the transmission tree for the outbreak. The EBOV genomic data are consistent with that tree. It confirms that there was a single source for the Nigerian infections, shows that the Nigerian EBOV lineage nests within a lineage previously seen in Liberia but is genetically distinct from it, and supports the conclusion that transmission from Nigeria to elsewhere did not occur.

  • Publication

    Virus genomes reveal factors that spread and sustained the Ebola epidemic

    (Springer Science and Business Media LLC, 2017-04) Dudas, Gytis; Carvalho, Luiz Max; Bedford, Trevor; Tatem, Andrew J.; Baele, Guy; Faria, Nuno R.; Park, Daniel John; Ladner, Jason T.; Arias, Armando; Asogun, Danny; Bielejec, Filip; Caddy, Sarah L.; Cotten, Matthew; D’Ambrozio, Jonathan; Dellicour, Simon; Di Caro, Antonino; Diclaro, Joseph W.; Duraffour, Sophie; Elmore, Michael J.; Fakoli, Lawrence S.; Faye, Ousmane; Gilbert, Merle L.; Gevao, Sahr M.; Gire, Stephen K; Gladden-Young, Adrianne; Gnirke, Andreas; Goba, Augustine; Grant, Donald S.; Haagmans, Bart L.; Hiscox, Julian A.; Jah, Umaru; Kugelman, Jeffrey R.; Liu, Di; Lu, Jia; Malboeuf, Christine M.; Mate, Suzanne; Matthews, David A.; Matranga, Christian B.; Meredith, Luke W.; Qu, James; Quick, Joshua; Pas, Suzan D.; Phan, My V. T.; Pollakis, Georgios; Reusken, Chantal B.; Sanchez-Lockhart, Mariano; Schaffner, Stephen; Schieffelin, John S.; Sealfon, Rachel; Simon-Loriere, Etienne; Smits, Saskia L.; Stoecker, Kilian; Thorne, Lucy; Tobin, Ekaete Alice; Vandi, Mohamed A.; Watson, Simon J.; West, Kendra L.; Whitmer, Shannon; Wiley, Michael R.; Winnicki, Sarah; Wohl, Shirlee; Wölfel, Roman; Yozwiak, Nathan; Andersen, Kristian G; Blyden, Sylvia O.; Bolay, Fatorma; Carroll, Miles W.; Dahn, Bernice; Diallo, Boubacar; Formenty, Pierre; Fraser, Christophe; Gao, George F.; Garry, Robert F.; Goodfellow, Ian; Günther, Stephan; Happi, Christian; Holmes, Edward C.; Kargbo, Brima; Keïta, Sakoba; Kellam, Paul; Koopmans, Marion P. G.; Kuhn, Jens H.; Loman, Nicholas J.; Magassouba, N’Faly; Naidoo, Dhamari; Nichol, Stuart T.; Nyenswah, Tolbert; Palacios, Gustavo; Pybus, Oliver G.; Sabeti, Pardis; Sall, Amadou; Ströher, Ute; Wurie, Isatta; Suchard, Marc A.; Lemey, Philippe; Rambaut, Andrew

    The 2013–2016 epidemic of Ebola virus disease was of unprecedented magnitude, duration and impact. Analysing 1610 Ebola virus genomes, representing over 5% of known cases, we reconstruct the dispersal, proliferation and decline of Ebola virus throughout the region. We test the association of geography, climate and demography with viral movement among administrative regions, inferring a classic ‘gravity’ model, with intense dispersal between larger and closer populations. Despite attenuation of international dispersal after border closures, cross-border transmission had already set the seeds for an international epidemic, rendering these measures ineffective in curbing the epidemic. We address why the epidemic did not spread into neighbouring countries, showing they were susceptible to significant outbreaks but at lower risk of introductions. Finally, we reveal this large epidemic to be a heterogeneous and spatially dissociated collection of transmission clusters of varying size, duration and connectivity. These insights will help inform interventions in future epidemics.

  • Publication

    Capturing sequence diversity in metagenomes with comprehensive and scalable probe design

    (Springer Science and Business Media LLC, 2019-02) Metsky, Hayden C.; Siddle, Katherine J.; Gladden-Young, Adrianne; Qu, James; Yang, David K.; Brehio, Patrick; Goldfarb, Andrew; Piantadosi, Anne; Wohl, Shirlee; Carter, Amber; Lin, Aaron E.; Barnes, Kayla G.; Tully, Damien C.; Corleis, Bjӧrn; Hennigan, Scott; Barbosa-Lima, Giselle; Vieira, Yasmine R.; Paul, Lauren M.; Tan, Amanda L.; Garcia, Kimberly F.; Parham, Leda A.; Odia, Ikponmwosa; Eromon, Philomena; Folarin, Onikepe A.; Goba, Augustine; Simon-Lorière, Etienne; Hensley, Lisa; Balmaseda, Angel; Harris, Eva; Kwon, Douglas S.; Allen, Todd M.; Runstadler, Jonathan A.; Smole, Sandra; Bozza, Fernando A.; Souza, Thiago M. L.; Isern, Sharon; Michael, Scott F.; Lorenzana, Ivette; Gehrke, Lee; Bosch, Irene; Ebel, Gregory; Grant, Donald S.; Happi, Christian T.; Park, Daniel J.; Gnirke, Andreas; Sabeti, Pardis; Matranga, Christian B.

    Metagenomic sequencing has the potential to transform microbial detection and characterization, but new tools are needed to improve its sensitivity. Here we present CATCH, a computational method to enhance nucleic-acid capture for enrichment of diverse microbial taxa. CATCH designs optimal probe sets, with a specified number of oligonucleotides, that achieve full coverage of and scale well with known sequence diversity. We focus on applying CATCH to capture viral genomes in complex metagenomic samples. We design, synthesize, and validate multiple probe sets, including one that targets whole genomes of the 356 viral species known to infect humans. Capture with these probe sets enriches unique viral content on average 18-fold, allowing us to assemble genomes that could not be recovered without enrichment, and accurately preserves within-sample diversity. We also use these probe sets to recover genomes from the 2018 Lassa fever outbreak in Nigeria and to improve detection of uncharacterized viral infections in human and mosquito samples. The results demonstrate that CATCH enables more sensitive and cost-effective metagenomic sequencing.