S. Whitney Barnes
Genomics Institute of the Novartis Research Foundation
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Publication
Featured researches published by S. Whitney Barnes.
Proceedings of the National Academy of Sciences of the United States of America | 2003
Tim Wiltshire; Mathew T. Pletcher; Serge Batalov; S. Whitney Barnes; Lisa M. Tarantino; Michael P. Cooke; Hua Wu; Kevin J. Smylie; Andrey Santrosyan; Neal G. Copeland; Nancy A. Jenkins; Francis Kalush; Richard J. Mural; Richard Glynne; Steve A. Kay; Mark D. Adams; Colin F. Fletcher
The nature and organization of polymorphisms, or differences, between genomes of individuals are of great interest, because these variations can be associated with or even underlie phenotypic traits, including disease susceptibility. To gain insight into the genetic and evolutionary factors influencing such biological variation, we have examined the arrangement (haplotype) of single-nucleotide polymorphisms across the genomes of eight inbred strains of mice. These analyses define blocks of high or low diversity, often extending across tens of megabases that are delineated by abrupt transitions. These observations provide a striking contrast to the haplotype structure of the human genome.
Antimicrobial Agents and Chemotherapy | 2012
Kapil Tahlan; Regina Wilson; David B. Kastrinsky; Kriti Arora; Vinod Nair; Elizabeth R. Fischer; S. Whitney Barnes; John R. Walker; David Alland; Clifton E. Barry; Helena I. Boshoff
ABSTRACT SQ109, a 1,2-diamine related to ethambutol, is currently in clinical trials for the treatment of tuberculosis, but its mode of action remains unclear. Here, we demonstrate that SQ109 disrupts cell wall assembly, as evidenced by macromolecular incorporation assays and ultrastructural analyses. SQ109 interferes with the assembly of mycolic acids into the cell wall core of Mycobacterium tuberculosis, as bacilli exposed to SQ109 show immediate inhibition of trehalose dimycolate (TDM) production and fail to attach mycolates to the cell wall arabinogalactan. These effects were not due to inhibition of mycolate synthesis, since total mycolate levels were unaffected, but instead resulted in the accumulation of trehalose monomycolate (TMM), the precursor of TDM and cell wall mycolates. In vitro assays using purified enzymes showed that this was not due to inhibition of the secreted Ag85 mycolyltransferases. We were unable to achieve spontaneous generation of SQ109-resistant mutants; however, analogs of this compound that resulted in similar shutdown of TDM synthesis with concomitant TMM accumulation were used to spontaneously generate resistant mutants that were also cross-resistant to SQ109. Whole-genome sequencing of these mutants showed that these all had mutations in the essential mmpL3 gene, which encodes a transmembrane transporter. Our results suggest that MmpL3 is the target of SQ109 and that MmpL3 is a transporter of mycobacterial TMM.
PLOS Biology | 2004
Mathew T. Pletcher; Philip McClurg; Serge Batalov; Andrew I. Su; S. Whitney Barnes; Erica Lagler; Ron Korstanje; Xiaosong Wang; Deborah Nusskern; Molly A. Bogue; Richard J. Mural; Beverly Paigen; Tim Wiltshire
Rapid expansion of available data, both phenotypic and genotypic, for multiple strains of mice has enabled the development of new methods to interrogate the mouse genome for functional genetic perturbations. In silico mapping provides an expedient way to associate the natural diversity of phenotypic traits with ancestrally inherited polymorphisms for the purpose of dissecting genetic traits. In mouse, the current single nucleotide polymorphism (SNP) data have lacked the density across the genome and coverage of enough strains to properly achieve this goal. To remedy this, 470,407 allele calls were produced for 10,990 evenly spaced SNP loci across 48 inbred mouse strains. Use of the SNP set with statistical models that considered unique patterns within blocks of three SNPs as an inferred haplotype could successfully map known single gene traits and a cloned quantitative trait gene. Application of this method to high-density lipoprotein and gallstone phenotypes reproduced previously characterized quantitative trait loci (QTL). The inferred haplotype data also facilitates the refinement of QTL regions such that candidate genes can be more easily identified and characterized as shown for adenylate cyclase 7.
Science | 2011
Stephan Meister; David Plouffe; Kelli Kuhen; Ghislain M. C. Bonamy; Tao Wu; S. Whitney Barnes; Selina Bopp; Rachel Borboa; A. Taylor Bright; Jianwei Che; Steve Cohen; Neekesh V. Dharia; Kerstin Gagaring; Montip Gettayacamin; Perry Gordon; Todd Groessl; Nobutaka Kato; Marcus C. S. Lee; Case W. McNamara; David A. Fidock; Advait Nagle; Tae-gyu Nam; Wendy Richmond; Jason Roland; Matthias Rottmann; Bin Zhou; Patrick Froissard; Richard Glynne; Dominique Mazier; Jetsumon Sattabongkot
Imidazolopiperazine compounds inhibit liver-stage malaria parasites with one oral dose in mice. Most malaria drug development focuses on parasite stages detected in red blood cells, even though, to achieve eradication, next-generation drugs active against both erythrocytic and exo-erythrocytic forms would be preferable. We applied a multifactorial approach to a set of >4000 commercially available compounds with previously demonstrated blood-stage activity (median inhibitory concentration < 1 micromolar) and identified chemical scaffolds with potent activity against both forms. From this screen, we identified an imidazolopiperazine scaffold series that was highly enriched among compounds active against Plasmodium liver stages. The orally bioavailable lead imidazolopiperazine confers complete causal prophylactic protection (15 milligrams/kilogram) in rodent models of malaria and shows potent in vivo blood-stage therapeutic activity. The open-source chemical tools resulting from our effort provide starting points for future drug discovery programs, as well as opportunities for researchers to investigate the biology of exo-erythrocytic forms.
Nature Communications | 2010
Kevin Pethe; Patricia C. Sequeira; Sanjay Agarwalla; Kyu Rhee; Kelli Kuhen; Wai Yee Phong; Viral Patel; David Beer; John R. Walker; Jeyaraj Duraiswamy; Jan Jiricek; Thomas H. Keller; Arnab Chatterjee; Mai Ping Tan; Manjunatha Ujjini; Srinivasa P. S. Rao; Luis R. Camacho; Pablo Bifani; Puiying A. Mak; Ida Ma; S. Whitney Barnes; Zhong Chen; David Plouffe; Pamela Thayalan; Seow Hwee Ng; Melvin Au; Boon Heng Lee; Bee Huat Tan; Sindhu Ravindran; Mahesh Nanjundappa
Candidate antibacterials are usually identified on the basis of their in vitro activity. However, the apparent inhibitory activity of new leads can be misleading because most culture media do not reproduce an environment relevant to infection in vivo. In this study, while screening for novel anti-tuberculars, we uncovered how carbon metabolism can affect antimicrobial activity. Novel pyrimidine–imidazoles (PIs) were identified in a whole-cell screen against Mycobacterium tuberculosis. Lead optimization generated in vitro potent derivatives with desirable pharmacokinetic properties, yet without in vivo efficacy. Mechanism of action studies linked the PI activity to glycerol metabolism, which is not relevant for M. tuberculosis during infection. PIs induced self-poisoning of M. tuberculosis by promoting the accumulation of glycerol phosphate and rapid ATP depletion. This study underlines the importance of understanding central bacterial metabolism in vivo and of developing predictive in vitro culture conditions as a prerequisite for the rational discovery of new antibiotics. Candidate anti-tuberculosis drugs are often identified in whole-cell screens. Here, Petheet al. show that inappropriate carbon-source selection can lead to the identification of compounds devoid of efficacy in vivo, underlining the importance of developing predictive in vitroscreens.
Proceedings of the National Academy of Sciences of the United States of America | 2010
Neekesh V. Dharia; A. Taylor Bright; Scott J. Westenberger; S. Whitney Barnes; Serge Batalov; Kelli Kuhen; Rachel Borboa; Colleen M. McClean; Joseph M. Vinetz; Victor Neyra; Alejandro Llanos-Cuentas; John W. Barnwell; John R. Walker; Elizabeth A. Winzeler
Plasmodium vivax causes 25–40% of malaria cases worldwide, yet research on this human malaria parasite has been neglected. Nevertheless, the recent publication of the P. vivax reference genome now allows genomics and systems biology approaches to be applied to this pathogen. We show here that whole-genome analysis of the parasite can be achieved directly from ex vivo-isolated parasites, without the need for in vitro propagation. A single isolate of P. vivax obtained from a febrile patient with clinical malaria from Peru was subjected to whole-genome sequencing (30× coverage). This analysis revealed over 18,261 single-nucleotide polymorphisms (SNPs), 6,257 of which were further validated using a tiling microarray. Within core chromosomal genes we find that one SNP per every 985 bases of coding sequence distinguishes this recent Peruvian isolate, designated IQ07, from the reference Salvador I strain obtained in 1972. This full-genome sequence of an uncultured P. vivax isolate shows that the same regions with low numbers of aligned sequencing reads are also highly variable by genomic microarray analysis. Finally, we show that the genes containing the largest ratio of nonsynonymous-to-synonymous SNPs include two AP2 transcription factors and the P. vivax multidrug resistance-associated protein (PvMRP1), an ABC transporter shown to be associated with quinoline and antifolate tolerance in Plasmodium falciparum. This analysis provides a data set for comparative analysis with important potential for identifying markers for global parasite diversity and drug resistance mapping studies.
Nature | 2016
Shilpi Khare; Advait Nagle; Agnes Biggart; Yin H. Lai; Fang Liang; Lauren C. Davis; S. Whitney Barnes; Casey J. N. Mathison; Elmarie Myburgh; Mu-Yun Gao; J. Robert Gillespie; Xianzhong Liu; Jocelyn L. Tan; Monique Stinson; Ianne Rivera; Jaime Ballard; Vince Yeh; Todd Groessl; Hazel X. Y. Koh; John D. Venable; Badry Bursulaya; Michael B. Shapiro; Pranab Mishra; Glen Spraggon; Ansgar Brock; Jeremy C. Mottram; Frederick S. Buckner; Srinivasa P. S. Rao; Ben G. Wen; John R. Walker
Chagas disease, leishmaniasis and sleeping sickness affect 20 million people worldwide and lead to more than 50,000 deaths annually. The diseases are caused by infection with the kinetoplastid parasites Trypanosoma cruzi, Leishmania spp. and Trypanosoma brucei spp., respectively. These parasites have similar biology and genomic sequence, suggesting that all three diseases could be cured with drugs that modulate the activity of a conserved parasite target. However, no such molecular targets or broad spectrum drugs have been identified to date. Here we describe a selective inhibitor of the kinetoplastid proteasome (GNF6702) with unprecedented in vivo efficacy, which cleared parasites from mice in all three models of infection. GNF6702 inhibits the kinetoplastid proteasome through a non-competitive mechanism, does not inhibit the mammalian proteasome or growth of mammalian cells, and is well-tolerated in mice. Our data provide genetic and chemical validation of the parasite proteasome as a promising therapeutic target for treatment of kinetoplastid infections, and underscore the possibility of developing a single class of drugs for these neglected diseases.
Vaccine | 2009
W. Ray Waters; Mitchell V. Palmer; Brian J. Nonnecke; Tyler C. Thacker; Charles F. Capinos Scherer; D. Mark Estes; R. Glyn Hewinson; H. Martin Vordermeier; S. Whitney Barnes; John R. Walker; Richard Glynne; Tsungda Hsu; Brian Weinrick; Karolin Biermann; Michelle H. Larsen; William R. Jacobs
An attenuated Mycobacterium bovisRD1 deletion (DeltaRD1) mutant of the Ravenel strain was constructed, characterized, and sequenced. This M. bovis DeltaRD1 vaccine strain administered to calves at 2 weeks of age provided similar efficacy as M. bovis bacillus Calmette Guerin (BCG) against low dose, aerosol challenge with virulent M. bovis at 3.5 months of age. Approximately 4.5 months after challenge, both DeltaRD1- and BCG-vaccinates had reduced tuberculosis (TB)-associated pathology in lungs and lung-associated lymph nodes and M. bovis colonization of tracheobronchial lymph nodes as compared to non-vaccinates. Mean central memory responses elicited by either DeltaRD1 or BCG prior to challenge correlated with reduced pathology and bacterial colonization. Neither DeltaRD1 or BCG elicited IFN-gamma responses to rESAT-6:CFP-10 prior to challenge, an emerging tool for modern TB surveillance programs. The DeltaRD1 strain may prove useful for bovine TB vaccine programs, particularly if additional mutations are included to improve safety and immunogenicity.
Antimicrobial Agents and Chemotherapy | 2014
Kelli Kuhen; Arnab K. Chatterjee; Matthias Rottmann; Kerstin Gagaring; Rachel Borboa; Jennifer Buenviaje; Zhong Chen; Carolyn Francek; Tao Wu; Advait Nagle; S. Whitney Barnes; David Plouffe; Marcus C. S. Lee; David A. Fidock; Wouter Graumans; Marga van de Vegte-Bolmer; Geert Jan van Gemert; Grennady Wirjanata; Boni F. Sebayang; Jutta Marfurt; Bruce Russell; Rossarin Suwanarusk; Ric N. Price; François Nosten; Anchalee Tungtaeng; Montip Gettayacamin; Jetsumon Sattabongkot; Jennifer Taylor; John R. Walker; David C. Tully
ABSTRACT Renewed global efforts toward malaria eradication have highlighted the need for novel antimalarial agents with activity against multiple stages of the parasite life cycle. We have previously reported the discovery of a novel class of antimalarial compounds in the imidazolopiperazine series that have activity in the prevention and treatment of blood stage infection in a mouse model of malaria. Consistent with the previously reported activity profile of this series, the clinical candidate KAF156 shows blood schizonticidal activity with 50% inhibitory concentrations of 6 to 17.4 nM against P. falciparum drug-sensitive and drug-resistant strains, as well as potent therapeutic activity in a mouse models of malaria with 50, 90, and 99% effective doses of 0.6, 0.9, and 1.4 mg/kg, respectively. When administered prophylactically in a sporozoite challenge mouse model, KAF156 is completely protective as a single oral dose of 10 mg/kg. Finally, KAF156 displays potent Plasmodium transmission blocking activities both in vitro and in vivo. Collectively, our data suggest that KAF156, currently under evaluation in clinical trials, has the potential to treat, prevent, and block the transmission of malaria.
Nature Chemical Biology | 2013
Regina Wilson; Pradeep Kumar; Vijay Parashar; Catherine Vilchèze; Romain Veyron-Churlet; Joel S. Freundlich; S. Whitney Barnes; John R. Walker; Michael J. Szymonifka; Emily Marchiano; Shubhada Shenai; Roberto Colangeli; William R. Jacobs; Matthew B. Neiditch; Laurent Kremer; David Alland
We report a new class of thiophene (TP) compounds that kill Mycobacterium tuberculosis (Mtb) by the novel mechanism of Pks13 inhibition. An F79S mutation near the catalytic Ser-55 site in Pks13 conferred TP-resistance in Mtb. Over-expression of wild-type pks13 resulted in TP-resistance and over-expression of the F79S pks13 mutant conferred high-level resistance. In vitro, TP inhibited fatty acyl-AMP loading onto Pks13. TP inhibited mycolic acid biosynthesis in wild-type Mtb, but to a much lesser extent in TP-resistant Mtb. TP treatment was bactericidal and equivalent to the first-line drug isoniazid, but it was less likely to permit emergent resistance. Combined isoniazid and TP treatment exhibited sterilizing activity. Computational-docking identified a possible TP-binding groove within the Pks13 ACP domain. This study confirms that Mtb Pks13 is required for mycolic acid biosynthesis, validates it as a druggable target and demonstrates the therapeutic potential of simultaneously inhibiting multiple targets in the same biosynthetic pathway.