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1.
Yearb Med Inform ; 26(1): 178-187, 2017 Aug.
Article in English | MEDLINE | ID: mdl-29063562

ABSTRACT

Objectives: To highlight and provide insights into key developments in translational bioinformatics between 2014 and 2016. Methods: This review describes some of the most influential bioinformatics papers and resources that have been published between 2014 and 2016 as well as the national genome sequencing initiatives that utilize these resources to routinely embed genomic medicine into healthcare. Also discussed are some applications of the secondary use of patient data followed by a comprehensive view of the open challenges and emergent technologies. Results: Although data generation can be performed routinely, analyses and data integration methods still require active research and standardization to improve streamlining of clinical interpretation. The secondary use of patient data has resulted in the development of novel algorithms and has enabled a refined understanding of cellular and phenotypic mechanisms. New data storage and data sharing approaches are required to enable diverse biomedical communities to contribute to genomic discovery. Conclusion: The translation of genomics data into actionable knowledge for use in healthcare is transforming the clinical landscape in an unprecedented way. Exciting and innovative models that bridge the gap between clinical and academic research are set to open up the field of translational bioinformatics for rapid growth in a digital era.


Subject(s)
Computational Biology , Genomics , Translational Research, Biomedical , Data Mining , Electronic Health Records , Humans , Precision Medicine
2.
Science ; 299(5615): 2071-4, 2003 Mar 28.
Article in English | MEDLINE | ID: mdl-12663927

ABSTRACT

The complete genome sequence of Enterococcus faecalis V583, a vancomycin-resistant clinical isolate, revealed that more than a quarter of the genome consists of probable mobile or foreign DNA. One of the predicted mobile elements is a previously unknown vanB vancomycin-resistance conjugative transposon. Three plasmids were identified, including two pheromone-sensing conjugative plasmids, one encoding a previously undescribed pheromone inhibitor. The apparent propensity for the incorporation of mobile elements probably contributed to the rapid acquisition and dissemination of drug resistance in the enterococci.


Subject(s)
Biological Evolution , Enterococcus faecalis/genetics , Genome, Bacterial , Interspersed Repetitive Sequences , Sequence Analysis, DNA , Vancomycin Resistance/genetics , Adhesins, Bacterial/genetics , Bacterial Adhesion , Bacterial Proteins/genetics , Carrier Proteins/genetics , Carrier Proteins/metabolism , Chromosomes, Bacterial/genetics , Conjugation, Genetic , Conserved Sequence , DNA Transposable Elements , Digestive System/microbiology , Drug Resistance, Multiple, Bacterial , Enterococcus faecalis/drug effects , Enterococcus faecalis/pathogenicity , Enterococcus faecalis/physiology , Gene Transfer, Horizontal , Gram-Positive Bacterial Infections/microbiology , Humans , Lysogeny , Open Reading Frames , Oxidative Stress , Plasmids , Synteny , Virulence/genetics , Virulence Factors/genetics
3.
Proc Natl Acad Sci U S A ; 98(7): 4136-41, 2001 Mar 27.
Article in English | MEDLINE | ID: mdl-11259647

ABSTRACT

The complete genome sequence of Caulobacter crescentus was determined to be 4,016,942 base pairs in a single circular chromosome encoding 3,767 genes. This organism, which grows in a dilute aquatic environment, coordinates the cell division cycle and multiple cell differentiation events. With the annotated genome sequence, a full description of the genetic network that controls bacterial differentiation, cell growth, and cell cycle progression is within reach. Two-component signal transduction proteins are known to play a significant role in cell cycle progression. Genome analysis revealed that the C. crescentus genome encodes a significantly higher number of these signaling proteins (105) than any bacterial genome sequenced thus far. Another regulatory mechanism involved in cell cycle progression is DNA methylation. The occurrence of the recognition sequence for an essential DNA methylating enzyme that is required for cell cycle regulation is severely limited and shows a bias to intergenic regions. The genome contains multiple clusters of genes encoding proteins essential for survival in a nutrient poor habitat. Included are those involved in chemotaxis, outer membrane channel function, degradation of aromatic ring compounds, and the breakdown of plant-derived carbon sources, in addition to many extracytoplasmic function sigma factors, providing the organism with the ability to respond to a wide range of environmental fluctuations. C. crescentus is, to our knowledge, the first free-living alpha-class proteobacterium to be sequenced and will serve as a foundation for exploring the biology of this group of bacteria, which includes the obligate endosymbiont and human pathogen Rickettsia prowazekii, the plant pathogen Agrobacterium tumefaciens, and the bovine and human pathogen Brucella abortus.


Subject(s)
Caulobacter crescentus/genetics , Genome, Bacterial , Adaptation, Biological/genetics , Cell Cycle/genetics , DNA Methylation , Dinucleotide Repeats , Molecular Sequence Data , Peptide Hydrolases/genetics , Phylogeny , Signal Transduction , Transcription, Genetic
4.
Nature ; 406(6795): 477-83, 2000 Aug 03.
Article in English | MEDLINE | ID: mdl-10952301

ABSTRACT

Here we determine the complete genomic sequence of the gram negative, gamma-Proteobacterium Vibrio cholerae El Tor N16961 to be 4,033,460 base pairs (bp). The genome consists of two circular chromosomes of 2,961,146 bp and 1,072,314 bp that together encode 3,885 open reading frames. The vast majority of recognizable genes for essential cell functions (such as DNA replication, transcription, translation and cell-wall biosynthesis) and pathogenicity (for example, toxins, surface antigens and adhesins) are located on the large chromosome. In contrast, the small chromosome contains a larger fraction (59%) of hypothetical genes compared with the large chromosome (42%), and also contains many more genes that appear to have origins other than the gamma-Proteobacteria. The small chromosome also carries a gene capture system (the integron island) and host 'addiction' genes that are typically found on plasmids; thus, the small chromosome may have originally been a megaplasmid that was captured by an ancestral Vibrio species. The V. cholerae genomic sequence provides a starting point for understanding how a free-living, environmental organism emerged to become a significant human bacterial pathogen.


Subject(s)
Chromosomes, Bacterial , DNA, Bacterial , Vibrio cholerae/genetics , Base Sequence , Biological Transport , Cholera/microbiology , DNA Repair , Energy Metabolism , Evolution, Molecular , Gene Expression Regulation, Bacterial , Genome, Bacterial , Humans , Molecular Sequence Data , Phylogeny , Sequence Analysis, DNA , Vibrio cholerae/classification , Vibrio cholerae/pathogenicity
5.
Science ; 287(5459): 1809-15, 2000 Mar 10.
Article in English | MEDLINE | ID: mdl-10710307

ABSTRACT

The 2,272,351-base pair genome of Neisseria meningitidis strain MC58 (serogroup B), a causative agent of meningitis and septicemia, contains 2158 predicted coding regions, 1158 (53.7%) of which were assigned a biological role. Three major islands of horizontal DNA transfer were identified; two of these contain genes encoding proteins involved in pathogenicity, and the third island contains coding sequences only for hypothetical proteins. Insights into the commensal and virulence behavior of N. meningitidis can be gleaned from the genome, in which sequences for structural proteins of the pilus are clustered and several coding regions unique to serogroup B capsular polysaccharide synthesis can be identified. Finally, N. meningitidis contains more genes that undergo phase variation than any pathogen studied to date, a mechanism that controls their expression and contributes to the evasion of the host immune system.


Subject(s)
Genome, Bacterial , Neisseria meningitidis/genetics , Neisseria meningitidis/pathogenicity , Sequence Analysis, DNA , Antigenic Variation , Antigens, Bacterial/immunology , Bacteremia/microbiology , Bacterial Capsules/genetics , Bacterial Proteins/genetics , Bacterial Proteins/physiology , DNA Transposable Elements , Evolution, Molecular , Fimbriae, Bacterial/genetics , Humans , Meningitis, Meningococcal/microbiology , Meningococcal Infections/microbiology , Molecular Sequence Data , Mutation , Neisseria meningitidis/classification , Neisseria meningitidis/physiology , Open Reading Frames , Operon , Phylogeny , Recombination, Genetic , Serotyping , Transformation, Bacterial , Virulence/genetics
6.
Science ; 286(5444): 1571-7, 1999 Nov 19.
Article in English | MEDLINE | ID: mdl-10567266

ABSTRACT

The complete genome sequence of the radiation-resistant bacterium Deinococcus radiodurans R1 is composed of two chromosomes (2,648,638 and 412,348 base pairs), a megaplasmid (177,466 base pairs), and a small plasmid (45,704 base pairs), yielding a total genome of 3,284, 156 base pairs. Multiple components distributed on the chromosomes and megaplasmid that contribute to the ability of D. radiodurans to survive under conditions of starvation, oxidative stress, and high amounts of DNA damage were identified. Deinococcus radiodurans represents an organism in which all systems for DNA repair, DNA damage export, desiccation and starvation recovery, and genetic redundancy are present in one cell.


Subject(s)
Genome, Bacterial , Gram-Positive Cocci/genetics , Physical Chromosome Mapping , Sequence Analysis, DNA , Bacterial Proteins/biosynthesis , Bacterial Proteins/chemistry , Bacterial Proteins/genetics , Catalase/genetics , Chromosomes, Bacterial/genetics , DNA Damage , DNA Repair/genetics , DNA, Bacterial/genetics , Energy Metabolism , Genes, Bacterial , Gram-Positive Cocci/chemistry , Gram-Positive Cocci/classification , Gram-Positive Cocci/radiation effects , Molecular Sequence Data , Open Reading Frames , Oxidative Stress , Plasmids , Radiation Tolerance , Repetitive Sequences, Nucleic Acid , Superoxide Dismutase/genetics , Thermus/chemistry , Thermus/genetics , Ultraviolet Rays
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