scispace - formally typeset
Search or ask a question
Author

Johnson O. Ouma

Bio: Johnson O. Ouma is an academic researcher from Crops Research Institute. The author has contributed to research in topics: Tsetse fly & Population. The author has an hindex of 14, co-authored 22 publications receiving 967 citations.

Papers
More filters
Journal ArticleDOI
Junichi Watanabe1, Masahira Hattori1, Matthew Berriman2, Michael J. Lehane3, Neil Hall4, Neil Hall5, Philippe Solano6, Serap Aksoy7, Winston Hide8, Winston Hide9, Yeya T. Touré10, Geoffrey M. Attardo7, Alistair C. Darby4, Atsushi Toyoda11, Christiane Hertz-Fowler2, Denis M. Larkin12, James Cotton2, Mandy Sanders2, Martin T. Swain12, Michael A. Quail2, Noboru Inoue13, Sophie Ravel6, Todd D. Taylor, Tulika P. Srivastava14, Vineet K. Sharma15, Wesley C. Warren16, Richard K. Wilson16, Yutaka Suzuki1, Daniel Lawson, Daniel S.T. Hughes, Karyn Megy, Daniel K. Masiga17, Paul O. Mireji18, Immo A. Hansen19, Jan Van Den Abbeele20, Joshua B. Benoit7, Joshua B. Benoit21, Kostas Bourtzis22, Kostas Bourtzis23, Kostas Bourtzis24, George F. Obiero17, George F. Obiero9, Hugh M. Robertson25, Jeffery W. Jones26, Jing-Jiang Zhou27, Linda M. Field27, Markus Friedrich26, Steven G. Nyanjom28, Erich Loza Telleria7, Guy Caljon20, José M. C. Ribeiro29, Alvaro Acosta-Serrano3, Cher-Pheng Ooi3, Clair Rose3, David P. Price19, Lee R. Haines3, Alan Christoffels9, Cheolho Sim30, Daphne Q.-D. Pham31, David L. Denlinger32, Dawn L. Geiser33, Irene Omedo34, Joy J. Winzerling33, Justin T. Peyton32, Kevin K. Marucha18, Mario Jonas9, Megan E. Meuti32, Neil D. Rawlings, Qirui Zhang32, Rosaline W. Macharia9, Rosaline W. Macharia35, Veronika Michalkova7, Veronika Michalkova36, Zahra Jalali Sefid Dashti9, Aaron A. Baumann37, Gerd Gäde38, Heather G. Marco38, Jelle Caers39, Liliane Schoofs39, Michael A. Riehle33, Wanqi Hu40, Zhijian Tu40, Aaron M. Tarone41, Anna R. Malacrida42, Caleb K. Kibet17, Francesca Scolari42, J.J.O. Koekemoer43, Judith H. Willis44, Ludvik M. Gomulski42, Marco Falchetto42, Maxwell J. Scott45, Shuhua Fu41, Sing-Hoi Sze41, Thiago Luiz7, Brian L. Weiss7, Deirdre Walshe3, Jingwen Wang7, Mark Wamalwa9, Mark Wamalwa46, Sarah Mwangi9, Urvashi N. Ramphul3, Anna K. Snyder47, Corey L. Brelsfoard48, Gavin H. Thomas49, George Tsiamis23, Peter Arensburger50, Rita V. M. Rio47, Sandy J. Macdonald49, Sumir Panji38, Sumir Panji9, Adele Kruger9, Alia Benkahla51, Apollo Simon Peter Balyeidhusa52, Atway R. Msangi, Chinyere K. Okoro2, Dawn Stephens, Eleanor J Stanley, Feziwe Mpondo9, Florence N. Wamwiri, Furaha Mramba, Geoffrey H. Siwo53, George Githinji34, Gordon William Harkins9, Grace Murilla, Heikki Lehväslaiho54, Imna I. Malele, Joanna E. Auma, Johnson Kinyua28, Johnson O. Ouma, Loyce M. Okedi, Lucien Manga, Martin Aslett2, Mathurin Koffi6, Michael W. Gaunt55, Mmule Makgamathe, Nicola Mulder38, Oliver Manangwa, Patrick P. Abila, Patrick Wincker56, Richard Gregory4, Rosemary Bateta18, Ryuichi Sakate57, Sheila C. Ommeh28, Stella Lehane3, Tadashi Imanishi57, Victor Chukwudi Osamor58, Yoshihiro Kawahara57, Yoshihiro Kawahara59 
University of Tokyo1, Wellcome Trust Sanger Institute2, Liverpool School of Tropical Medicine3, University of Liverpool4, King Abdulaziz University5, Institut de recherche pour le développement6, Yale University7, Harvard University8, University of the Western Cape9, World Health Organization10, National Institute of Genetics11, Aberystwyth University12, Obihiro University of Agriculture and Veterinary Medicine13, Indian Institute of Technology Mandi14, Indian Institute of Science Education and Research, Bhopal15, Washington University in St. Louis16, International Centre of Insect Physiology and Ecology17, Egerton University18, New Mexico State University19, Institute of Tropical Medicine Antwerp20, University of Cincinnati21, Alexander Fleming Biomedical Sciences Research Center22, University of Patras23, International Atomic Energy Agency24, University of Illinois at Urbana–Champaign25, Wayne State University26, Rothamsted Research27, Jomo Kenyatta University of Agriculture and Technology28, National Institutes of Health29, Baylor University30, University of Wisconsin–Parkside31, Ohio State University32, University of Arizona33, Wellcome Trust34, University of Nairobi35, Slovak Academy of Sciences36, Howard Hughes Medical Institute37, University of Cape Town38, Katholieke Universiteit Leuven39, Virginia Tech40, Texas A&M University41, University of Pavia42, University of Pretoria43, University of Georgia44, North Carolina State University45, Kenyatta University46, West Virginia University47, St. Catharine College48, University of York49, California State Polytechnic University, Pomona50, Pasteur Institute51, Makerere University52, University of Notre Dame53, King Abdullah University of Science and Technology54, University of London55, French Alternative Energies and Atomic Energy Commission56, National Institute of Advanced Industrial Science and Technology57, Covenant University58, University of Tsukuba59
25 Apr 2014-Science
TL;DR: The sequence and annotation of the 366-megabase Glossina mors Titans morsitans genome are described, providing a foundation for research into trypanosomiasis prevention and yield important insights with broad implications for multiple aspects of tsetse biology.
Abstract: Tsetse flies are the sole vectors of human African trypanosomiasis throughout sub-Saharan Africa. Both sexes of adult tsetse feed exclusively on blood and contribute to disease transmission. Notable differences between tsetse and other disease vectors include obligate microbial symbioses, viviparous reproduction, and lactation. Here, we describe the sequence and annotation of the 366-megabase Glossina morsitans morsitans genome. Analysis of the genome and the 12,308 predicted protein–encoding genes led to multiple discoveries, including chromosomal integrations of bacterial (Wolbachia) genome sequences, a family of lactation-specific proteins, reduced complement of host pathogen recognition proteins, and reduced olfaction/chemosensory associated genes. These genome data provide a foundation for research into trypanosomiasis prevention and yield important insights with broad implications for multiple aspects of tsetse biology.

242 citations

Journal ArticleDOI
TL;DR: The sensitivity and reproducibility of the LAMP assay coupled with the ability to detect the results visually without the need for sophisticated equipment indicate that the technique has strong potential for detection of HAT in clinical settings.

218 citations

Journal ArticleDOI
TL;DR: Wolbachia infections were detected in both laboratory and natural populations of several different Glossina species and the detection of horizontal gene transfer events, in which Wobachia genes were inserted into the tsetse flies fly nuclear genome.
Abstract: Background Wolbachia is a genus of endosymbiotic α-Proteobacteria infecting a wide range of arthropods and filarial nematodes. Wolbachia is able to induce reproductive abnormalities such as cytoplasmic incompatibility (CI), thelytokous parthenogenesis, feminization and male killing, thus affecting biology, ecology and evolution of its hosts. The bacterial group has prompted research regarding its potential for the control of agricultural and medical disease vectors, including Glossina spp., which transmits African trypanosomes, the causative agents of sleeping sickness in humans and nagana in animals.

143 citations

Journal ArticleDOI
28 Feb 2011-PLOS ONE
TL;DR: It is demonstrated that cattle will form an integral part of a control strategy for trypanosomiasis in Busia and Uganda, while different approaches are required for Serengeti and Nguruman ecosystems, where wildlife abound and are the major component of the tsetse fly food source.
Abstract: Tsetse flies are notoriously difficult to observe in nature, particularly when populations densities are low. It is therefore difficult to observe them on their hosts in nature; hence their vertebrate species can very often only be determined indirectly by analysis of their gut contents. This knowledge is a critical component of the information on which control tactics can be developed. The objective of this study was to determine the sources of tsetse bloodmeals, hence investigate their feeding preferences. We used mitochondrial cytochrome c oxidase 1 (COI) and cytochrome b (cytb) gene sequences for identification of tsetse fly blood meals, in order to provide a foundation for rational decisions to guide control of trypanosomiasis, and their vectors. Glossina swynnertoni were sampled from Serengeti (Tanzania) and G. pallidipes from Kenya (Nguruman and Busia), and Uganda. Sequences were used to query public databases, and the percentage identities obtained used to identify hosts. An initial assay showed that the feeds were from single sources. Hosts identified from blood fed flies collected in Serengeti ecosystem, included buffaloes (25/40), giraffes (8/40), warthogs (3/40), elephants (3/40) and one spotted hyena. In Nguruman, where G. pallidipes flies were analyzed, the feeds were from elephants (6/13) and warthogs (5/13), while buffaloes and baboons accounted for one bloodmeal each. Only cattle blood was detected in flies caught in Busia and Uganda. Out of four flies tested in Mbita Point, Suba District in western Kenya, one had fed on cattle, the other three on the Nile monitor lizard. These results demonstrate that cattle will form an integral part of a control strategy for trypanosomiasis in Busia and Uganda, while different approaches are required for Serengeti and Nguruman ecosystems, where wildlife abound and are the major component of the tsetse fly food source.

84 citations

Journal ArticleDOI
TL;DR: The tsetse populations analyzed differed in the prevalence of symbionts, despite being sympatric and therefore exposed to identical environmental factors, and there were too few natural co-infections detected with the Sodalis and trypanosomes to suggest extensive inter-relations between these infections in natural populations.
Abstract: Tsetse flies harbor at least three bacterial symbionts: Wigglesworthia glossinidia, Wolbachia pipientis and Sodalis glossinidius. Wigglesworthia and Sodalis reside in the gut in close association with trypanosomes and may influence establishment and development of midgut parasite infections. Wolbachia has been shown to induce reproductive effects in infected tsetse. This study was conducted to determine the prevalence of these endosymbionts in natural populations of G. austeni and G. pallidipes and to assess the degree of concurrent infections with trypanosomes. Fly samples analyzed originated from Kenyan coastal forests (trapped in 2009–2011) and South African G. austeni collected in 2008. The age structure was estimated by standard methods. G. austeni (n=298) and G. pallidipes (n= 302) were analyzed for infection with Wolbachia and Sodalis using PCR. Trypanosome infection was determined either by microscopic examination of dissected organs or by PCR amplification. Overall we observed that G. pallidipes females had a longer lifespan (70 d) than G. austeni (54 d) in natural populations. Wolbachia infections were present in all G. austeni flies analysed, while in contrast, this symbiont was absent from G. pallidipes. The density of Wolbachia infections in the Kenyan G. austeni population was higher than that observed in South African flies. The infection prevalence of Sodalis ranged from 3.7% in G. austeni to about 16% in G. pallidipes. Microscopic examination of midguts revealed an overall trypanosome infection prevalence of 6% (n = 235) and 5% (n = 552), while evaluation with ITS1 primers indicated a prevalence of about 13% (n = 296) and 10% (n = 302) in G. austeni and G. pallidipes, respectively. The majority of infections (46%) were with T. congolense. Co-infection with all three organisms was observed at 1% and 3.3% in G. austeni and G. pallidipes, respectively. Eleven out of the thirteen (85%) co-infected flies harboured T. congolense and T. simiae parasites. While the association between trypanosomes and Sodalis infection was statistically significant in G. pallidipes (P = 0.0127), the number of co-infected flies was too few for a definite conclusion. The tsetse populations analyzed differed in the prevalence of symbionts, despite being sympatric and therefore exposed to identical environmental factors. The density of infections with Wolbachia also differed between G. austeni populations. There were too few natural co-infections detected with the Sodalis and trypanosomes to suggest extensive inter-relations between these infections in natural populations. We discuss these findings in the context of potential symbiont-mediated control interventions to reduce parasite infections and/or fly populations.

52 citations


Cited by
More filters
Journal Article
Fumio Tajima1
30 Oct 1989-Genomics
TL;DR: It is suggested that the natural selection against large insertion/deletion is so weak that a large amount of variation is maintained in a population.

11,521 citations

Journal ArticleDOI

3,734 citations

Journal ArticleDOI
TL;DR: The combination of LAMP and novel microfluidic technologies such as Lab-on-a-chip may facilitate the realization of genetic point-of-care testing systems to be used by both developed and developing countries in the near future.

869 citations

Journal ArticleDOI
TL;DR: If national control programmes, international organisations, research institutes, and philanthropic partners engage in concerted action, elimination of this disease might even be possible, the World Health Organization has stated.

806 citations

Journal ArticleDOI
07 Jun 2012-PLOS ONE
TL;DR: The statistical approach is applied to a more appropriate data set from a recent survey that tested both a broad range of species and a sufficient number of individuals per species and corroborate the finding that Wolbachia are the most abundant endosymbionts among arthropod species.
Abstract: Wolbachia are intracellular bacteria that manipulate the reproduction of their arthropod hosts in remarkable ways. They are predominantly transmitted vertically from mother to offspring but also occasionally horizontally between species. In doing so, they infect a huge range of arthropod species worldwide. Recently, a statistical analysis estimated the infection frequency of Wolbachia among arthropod hosts to be 66%. At the same time, the authors of this analysis highlighted some weaknesses of the underlying data and concluded that in order to improve the estimate, a larger number of individuals per species should be assayed and species be chosen more randomly. Here we apply the statistical approach to a more appropriate data set from a recent survey that tested both a broad range of species and a sufficient number of individuals per species. Indeed, we find a substantially different infection frequency: We now estimate the proportion of Wolbachia-infected species to be around 40% which is lower than the previous estimate but still points to a surprisingly high number of arthropods harboring the bacteria. Notwithstanding this difference, we confirm the previous result that, within a given species, typically most or only a few individuals are infected. Moreover, we extend our analysis to include several reproductive parasites other than Wolbachia that were also screened for in the aforementioned empirical survey. For these symbionts we find a large variation in estimated infection frequencies and corroborate the finding that Wolbachia are the most abundant endosymbionts among arthropod species.

782 citations