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Dive into the research topics where Samuel V. Angiuoli is active.

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Featured researches published by Samuel V. Angiuoli.


Nature | 2002

Genome sequence and comparative analysis of the model rodent malaria parasite Plasmodium yoelii yoelii

Jane M. Carlton; Samuel V. Angiuoli; Bernard B. Suh; Taco W. A. Kooij; Mihaela Pertea; Joana C. Silva; Maria D. Ermolaeva; Jonathan E. Allen; Jeremy D. Selengut; Hean L. Koo; Jeremy Peterson; Mihai Pop; Daniel S. Kosack; Martin Shumway; Shelby Bidwell; Shamira Shallom; Susan Van Aken; Steven Riedmuller; Tamara Feldblyum; Jennifer Cho; John Quackenbush; Martha Sedegah; Azadeh Shoaibi; Leda M. Cummings; Laurence Florens; John R. Yates; J. Dale Raine; Robert E. Sinden; Michael Harris; Deirdre Cunningham

Species of malaria parasite that infect rodents have long been used as models for malaria disease research. Here we report the whole-genome shotgun sequence of one species, Plasmodium yoelii yoelii, and comparative studies with the genome of the human malaria parasite Plasmodium falciparum clone 3D7. A synteny map of 2,212 P. y. yoelii contiguous DNA sequences (contigs) aligned to 14 P. falciparum chromosomes reveals marked conservation of gene synteny within the body of each chromosome. Of about 5,300 P. falciparum genes, more than 3,300 P. y. yoelii orthologues of predominantly metabolic function were identified. Over 800 copies of a variant antigen gene located in subtelomeric regions were found. This is the first genome sequence of a model eukaryotic parasite, and it provides insight into the use of such systems in the modelling of Plasmodium biology and disease.


Nature | 2008

Comparative genomics of the neglected human malaria parasite Plasmodium vivax.

Jane M. Carlton; John H. Adams; Joana C. Silva; Shelby Bidwell; Hernan Lorenzi; Elisabet Caler; Jonathan Crabtree; Samuel V. Angiuoli; Emilio F. Merino; Paolo Amedeo; Qin Cheng; Richard M. R. Coulson; Brendan S. Crabb; Hernando A. del Portillo; Kobby Essien; Tamara V. Feldblyum; Carmen Fernandez-Becerra; Paul R. Gilson; Amy H. Gueye; Xiang Guo; Simon Kang’a; Taco W. A. Kooij; Michael L. J. Korsinczky; Esmeralda V. S. Meyer; Vish Nene; Ian T. Paulsen; Owen White; Stuart A. Ralph; Qinghu Ren; Tobias Sargeant

The human malaria parasite Plasmodium vivax is responsible for 25–40% of the ∼515 million annual cases of malaria worldwide. Although seldom fatal, the parasite elicits severe and incapacitating clinical symptoms and often causes relapses months after a primary infection has cleared. Despite its importance as a major human pathogen, P. vivax is little studied because it cannot be propagated continuously in the laboratory except in non-human primates. We sequenced the genome of P. vivax to shed light on its distinctive biological features, and as a means to drive development of new drugs and vaccines. Here we describe the synteny and isochore structure of P. vivax chromosomes, and show that the parasite resembles other malaria parasites in gene content and metabolic potential, but possesses novel gene families and potential alternative invasion pathways not recognized previously. Completion of the P. vivax genome provides the scientific community with a valuable resource that can be used to advance investigation into this neglected species.


Science | 2007

Draft Genome of the Filarial Nematode Parasite Brugia malayi

Elodie Ghedin; Shiliang Wang; David J. Spiro; Elisabet Caler; Qi Zhao; Jonathan Crabtree; Jonathan E. Allen; Arthur L. Delcher; David B. Guiliano; Diego Miranda-Saavedra; Samuel V. Angiuoli; Todd Creasy; Paolo Amedeo; Brian J. Haas; Najib M. El-Sayed; Jennifer R. Wortman; Tamara Feldblyum; Luke J. Tallon; Michael C. Schatz; Martin Shumway; Hean Koo; Seth Schobel; Mihaela Pertea; Mihai Pop; Owen White; Geoffrey J. Barton; Clotilde K. S. Carlow; Michael J. Crawford; Jennifer Daub; Matthew W. Dimmic

Parasitic nematodes that cause elephantiasis and river blindness threaten hundreds of millions of people in the developing world. We have sequenced the ∼90 megabase (Mb) genome of the human filarial parasite Brugia malayi and predict ∼11,500 protein coding genes in 71 Mb of robustly assembled sequence. Comparative analysis with the free-living, model nematode Caenorhabditis elegans revealed that, despite these genes having maintained little conservation of local synteny during ∼350 million years of evolution, they largely remain in linkage on chromosomal units. More than 100 conserved operons were identified. Analysis of the predicted proteome provides evidence for adaptations of B. malayi to niches in its human and vector hosts and insights into the molecular basis of a mutualistic relationship with its Wolbachia endosymbiont. These findings offer a foundation for rational drug design.


Omics A Journal of Integrative Biology | 2008

Toward an Online Repository of Standard Operating Procedures (SOPs) for (Meta)genomic Annotation

Samuel V. Angiuoli; Aaron Gussman; William Klimke; Guy Cochrane; Dawn Field; George M Garrity; Chinnappa D. Kodira; Nikos C. Kyrpides; Ramana Madupu; Victor Markowitz; Tatiana Tatusova; Nicholas R. Thomson; Owen White

The methodologies used to generate genome and metagenome annotations are diverse and vary between groups and laboratories. Descriptions of the annotation process are helpful in interpreting genome annotation data. Some groups have produced Standard Operating Procedures (SOPs) that describe the annotation process, but standards are lacking for structure and content of these descriptions. In addition, there is no central repository to store and disseminate procedures and protocols for genome annotation. We highlight the importance of SOPs for genome annotation and endorse an online repository of SOPs.


Bioinformatics | 2011

Mugsy: Fast multiple alignment of closely related whole genomes

Samuel V. Angiuoli

Motivation: The relative ease and low cost of current generation sequencing technologies has led to a dramatic increase in the number of sequenced genomes for species across the tree of life. This increasing volume of data requires tools that can quickly compare multiple whole-genome sequences, millions of base pairs in length, to aid in the study of populations, pan-genomes, and genome evolution. Results: We present a new multiple alignment tool for whole genomes named Mugsy. Mugsy is computationally efficient and can align 31 Streptococcus pneumoniae genomes in less than 2 hours producing alignments that compare favorably to other tools. Mugsy is also the fastest program evaluated for the multiple alignment of assembled human chromosome sequences from four individuals. Mugsy does not require a reference sequence, can align mixtures of assembled draft and completed genome data, and is robust in identifying a rich complement of genetic variation including duplications, rearrangements, and large-scale gain and loss of sequence. Availability: Mugsy is free, open-source software available from http://mugsy.sf.net. Contact: [email protected] Supplementary information: Supplementary data are available at Bioinformatics online.


Genome Biology | 2010

Structure and dynamics of the pan-genome of Streptococcus pneumoniae and closely related species

Claudio Donati; N. Luisa Hiller; Hervé Tettelin; Alessandro Muzzi; Nicholas J. Croucher; Samuel V. Angiuoli; Marco R. Oggioni; Julie C. Dunning Hotopp; Fen Z. Hu; David R. Riley; Antonello Covacci; Timothy J. Mitchell; Stephen D. Bentley; Morgens Kilian; Garth D. Ehrlich; Rino Rappuoli; E. Richard Moxon; Vega Masignani

BackgroundStreptococcus pneumoniae is one of the most important causes of microbial diseases in humans. The genomes of 44 diverse strains of S. pneumoniae were analyzed and compared with strains of non-pathogenic streptococci of the Mitis group.ResultsDespite evidence of extensive recombination, the S. pneumoniae phylogenetic tree revealed six major lineages. With the exception of serotype 1, the tree correlated poorly with capsular serotype, geographical site of isolation and disease outcome. The distribution of dispensable genes - genes present in more than one strain but not in all strains - was consistent with phylogeny, although horizontal gene transfer events attenuated this correlation in the case of ancient lineages. Homologous recombination, involving short stretches of DNA, was the dominant evolutionary process of the core genome of S. pneumoniae. Genetic exchange occurred both within and across the borders of the species, and S. mitis was the main reservoir of genetic diversity of S. pneumoniae. The pan-genome size of S. pneumoniae increased logarithmically with the number of strains and linearly with the number of polymorphic sites of the sampled genomes, suggesting that acquired genes accumulate proportionately to the age of clones. Most genes associated with pathogenicity were shared by all S. pneumoniae strains, but were also present in S. mitis, S. oralis and S. infantis, indicating that these genes are not sufficient to determine virulence.ConclusionsGenetic exchange with related species sharing the same ecological niche is the main mechanism of evolution of S. pneumoniae. The open pan-genome guarantees the species a quick and economical response to diverse environments.


BMC Bioinformatics | 2011

CloVR: A virtual machine for automated and portable sequence analysis from the desktop using cloud computing

Samuel V. Angiuoli; Malcolm Matalka; Aaron Gussman; Kevin Galens; Mahesh Vangala; David R. Riley; Cesar Arze; James R. White; Owen White; W. Florian Fricke

BackgroundNext-generation sequencing technologies have decentralized sequence acquisition, increasing the demand for new bioinformatics tools that are easy to use, portable across multiple platforms, and scalable for high-throughput applications. Cloud computing platforms provide on-demand access to computing infrastructure over the Internet and can be used in combination with custom built virtual machines to distribute pre-packaged with pre-configured software.ResultsWe describe the Cloud Virtual Resource, CloVR, a new desktop application for push-button automated sequence analysis that can utilize cloud computing resources. CloVR is implemented as a single portable virtual machine (VM) that provides several automated analysis pipelines for microbial genomics, including 16S, whole genome and metagenome sequence analysis. The CloVR VM runs on a personal computer, utilizes local computer resources and requires minimal installation, addressing key challenges in deploying bioinformatics workflows. In addition CloVR supports use of remote cloud computing resources to improve performance for large-scale sequence processing. In a case study, we demonstrate the use of CloVR to automatically process next-generation sequencing data on multiple cloud computing platforms.ConclusionThe CloVR VM and associated architecture lowers the barrier of entry for utilizing complex analysis protocols on both local single- and multi-core computers and cloud systems for high throughput data processing.


Science Translational Medicine | 2015

Personalized genomic analyses for cancer mutation discovery and interpretation

Siân Jones; Valsamo Anagnostou; Karli Lytle; Sonya Parpart-Li; Monica Nesselbush; David Riley; Manish Shukla; Bryan Chesnick; Maura Kadan; Eniko Papp; Kevin Galens; Derek Murphy; Theresa Zhang; Lisa Kann; Mark Sausen; Samuel V. Angiuoli; Luis A. Diaz; Victor E. Velculescu

Analysis of matched tumor and normal DNA from the same patient improves accuracy of identification of actionable mutations, allowing better targeting of potential treatments. Will the real mutation please stand up? When a patient is diagnosed with cancer, a sample of the tumor is often analyzed to look for mutations that might guide the approach to targeted treatment of the disease. Jones et al. analyzed samples from more than 800 patients with 15 different cancer types and showed that this standard approach is not necessarily accurate without also analyzing a matched sample of normal DNA from the same patient. The authors found that, compared to analysis of paired samples, the standard tumor-only sequencing approach frequently identified mutations that were present in the patient’s normal tissues and were therefore not suitable for targeted therapy or, conversely, missed useful new mutations in the tumor. Massively parallel sequencing approaches are beginning to be used clinically to characterize individual patient tumors and to select therapies based on the identified mutations. A major question in these analyses is the extent to which these methods identify clinically actionable alterations and whether the examination of the tumor tissue alone is sufficient or whether matched normal DNA should also be analyzed to accurately identify tumor-specific (somatic) alterations. To address these issues, we comprehensively evaluated 815 tumor-normal paired samples from patients of 15 tumor types. We identified genomic alterations using next-generation sequencing of whole exomes or 111 targeted genes that were validated with sensitivities >95% and >99%, respectively, and specificities >99.99%. These analyses revealed an average of 140 and 4.3 somatic mutations per exome and targeted analysis, respectively. More than 75% of cases had somatic alterations in genes associated with known therapies or current clinical trials. Analyses of matched normal DNA identified germline alterations in cancer-predisposing genes in 3% of patients with apparently sporadic cancers. In contrast, a tumor-only sequencing approach could not definitively identify germline changes in cancer-predisposing genes and led to additional false-positive findings comprising 31% and 65% of alterations identified in targeted and exome analyses, respectively, including in potentially actionable genes. These data suggest that matched tumor-normal sequencing analyses are essential for precise identification and interpretation of somatic and germline alterations and have important implications for the diagnostic and therapeutic management of cancer patients.


Proceedings of the National Academy of Sciences of the United States of America | 2011

Neisseria meningitidis is structured in clades associated with restriction modification systems that modulate homologous recombination

Sonia Budroni; Emilio Siena; Julie C. Dunning Hotopp; Kate L. Seib; Davide Serruto; Chiara Nofroni; Maurizio Comanducci; David Riley; Sean C. Daugherty; Samuel V. Angiuoli; Antonello Covacci; Mariagrazia Pizza; Rino Rappuoli; E. Richard Moxon; Hervé Tettelin; Duccio Medini

Molecular data on a limited number of chromosomal loci have shown that the population of Neisseria meningitidis (Nm), a deadly human pathogen, is structured in distinct lineages. Given that the Nm population undergoes substantial recombination, the mechanisms resulting in the evolution of these lineages, their persistence in time, and the implications for the pathogenicity of the bacterium are not yet completely understood. Based on whole-genome sequencing, we show that Nm is structured in phylogenetic clades. Through acquisition of specific genes and through insertions and rearrangements, each clade has acquired and remodeled specific genomic tracts, with the potential to impact on the commensal and virulence behavior of Nm. Despite this clear evidence of a structured population, we confirm high rates of detectable recombination throughout the whole Nm chromosome. However, gene conversion events were found to be longer within clades than between clades, suggesting a DNA cleavage mechanism associated with the phylogeny of the species. We identify 22 restriction modification systems, probably acquired by horizontal gene transfer from outside of the species/genus, whose distribution in the different strains coincides with the phylogenetic clade structure. We provide evidence that these clade-associated restriction modification systems generate a differential barrier to DNA exchange consistent with the observed population structure. These findings have general implications for the emergence of lineage structure and virulence in recombining bacterial populations, and they could provide an evolutionary framework for the population biology of a number of other bacterial species that show contradictory population structure and dynamics.


Journal of Bacteriology | 2011

Two New Complete Genome Sequences Offer Insight into Host and Tissue Specificity of Plant Pathogenic Xanthomonas spp.

Adam J. Bogdanove; Ralf Koebnik; Hong Lu; Ayako Furutani; Samuel V. Angiuoli; Prabhu B. Patil; Marie-Anne Van Sluys; Robert P. Ryan; Damien Meyer; Sang-Wook Han; Gudlur Aparna; Misha Rajaram; Arthur L. Delcher; Adam M. Phillippy; Daniela Puiu; Michael C. Schatz; Martin Shumway; Daniel D. Sommer; Cole Trapnell; Faiza Benahmed; George Dimitrov; Ramana Madupu; Diana Radune; Steven A. Sullivan; Gopaljee Jha; Hiromichi Ishihara; Sang Won Lee; Alok K. Pandey; Vikas Sharma; Malinee Sriariyanun

Xanthomonas is a large genus of bacteria that collectively cause disease on more than 300 plant species. The broad host range of the genus contrasts with stringent host and tissue specificity for individual species and pathovars. Whole-genome sequences of Xanthomonas campestris pv. raphani strain 756C and X. oryzae pv. oryzicola strain BLS256, pathogens that infect the mesophyll tissue of the leading models for plant biology, Arabidopsis thaliana and rice, respectively, were determined and provided insight into the genetic determinants of host and tissue specificity. Comparisons were made with genomes of closely related strains that infect the vascular tissue of the same hosts and across a larger collection of complete Xanthomonas genomes. The results suggest a model in which complex sets of adaptations at the level of gene content account for host specificity and subtler adaptations at the level of amino acid or noncoding regulatory nucleotide sequence determine tissue specificity.

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Luis A. Diaz

University of North Carolina at Chapel Hill

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Owen White

University of Melbourne

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Mark Sausen

Children's Hospital of Philadelphia

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Siân Jones

Johns Hopkins University

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David Riley

Queen's University Belfast

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Kevin Galens

J. Craig Venter Institute

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Lisa Kann

Johns Hopkins University

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