Genomics
55170
224389848
2008-07-08T17:17:27Z
128.252.234.247
/* History */
'''Genomics''' is the study of an organism's entire [[genome]]. The field includes intensive efforts to determine the entire [[DNA sequence]] of organisms and fine-scale [[genetic mapping]] efforts. The field also includes studies of intragenomic phenomena such as [[heterosis]], [[epistasis]], [[pleiotropy]] and other interactions between loci and alleles within the genome. In contrast, the investigation of single genes, their functions and roles, something very common in today's medical and biological research, and a primary focus of [[molecular biology]], does not fall into the definition of genomics, unless the aim of this genetic, pathway, and functional information analysis is to elucidate its effect on, place in, and response to the entire genome's networks.
== History ==
Genomics was established by [[Fred Sanger]] when he first sequenced the complete genomes of a virus and a mitochondrion. His group established techniques of sequencing, genome mapping, data storage, and bioinformatic analyses in the 1970-1980s. A major branch of genomics is still concerned with [[sequencing]] the genomes of various organisms, but the knowledge of full genomes has created the possibility for the field of [[functional genomics]], mainly concerned with patterns of [[gene expression]] during various conditions. The most important tools here are [[microarray]]s and [[bioinformatics]]. Study of the full set of proteins in a cell type or tissue, and the changes during various conditions, is called [[proteomics]]. The actual term 'genomics' is thought to have been coined by Dr. Tom Roderick, a geneticist at the Jackson Laboratory (Bar Harbor, ME) over beer at a meeting held in Maryland on the mapping of the human genome in 1986.
In 1972, [[Walter Fiers]] and his team at the Laboratory of Molecular Biology of the [[University of Ghent]] ([[Ghent]], [[Belgium]]) were the first to determine the sequence of a gene: the gene for [[Bacteriophage MS2]] coat protein.<ref>Min Jou W, Haegeman G, Ysebaert M, Fiers W., Nucleotide sequence of the gene coding for the bacteriophage MS2 coat protein, Nature. 1972 May 12;237(5350):82-8</ref>
In 1976, the team determined the complete nucleotide-sequence of bacteriophage MS2-RNA.<ref>Fiers W et al., Complete nucleotide-sequence of bacteriophage MS2-RNA - primary and secondary structure of replicase gene, Nature, 260, 500-507, 1976</ref>
The first DNA-based genome to be sequenced in its entirety was that of [[bacteriophage]] [[Phi-X174 phage|Φ-X174;]] (5,368 [[Base pair|bp]]), sequenced by [[Frederick Sanger]] in 1977<ref>Sanger F, Air GM, Barrell BG, Brown NL, Coulson AR, Fiddes CA, Hutchison CA, Slocombe PM, Smith M., Nucleotide sequence of bacteriophage phi X174 DNA, Nature. 1977 Feb 24;265(5596):687-95</ref>.
The first free-living organism to be sequenced was that of ''[[Haemophilus influenzae]]'' (1.8 [[Base pair|Mb]]) in 1995, and since then genomes are being sequenced at a rapid pace. A rough draft of the human genome was completed by the [[Human Genome Project]] in early 2001, creating much fanfare.
As of September 2007, the complete sequence was known of about 1879 [[virus]]es <ref>[http://www.ncbi.nlm.nih.gov/genomes/VIRUSES/virostat.html ''The Viral Genomes Resource'', NCBI Friday, 14 September, 2007]</ref>, 577 [[bacteria]]l species and roughly 23 [[eukaryote]] organisms, of which about half are [[fungi]].
<ref>
[http://www.ncbi.nlm.nih.gov/genomes/static/gpstat.html ''Genome Project Statistic'', NCBI Friday, 14 September, 2007]
</ref>
Most of the bacteria whose genomes have been completely sequenced are problematic disease-causing agents, such as ''[[Haemophilus influenzae]]''. Of the other sequenced species, most were chosen because they were well-studied model organisms or promised to become good models. Yeast (''[[Saccharomyces cerevisiae]]'') has long been an important [[model organism]] for the [[eukaryotic cell]], while the fruit fly ''[[Drosophila melanogaster]]'' has been a very important tool (notably in early pre-molecular [[genetics]]). The worm ''[[Caenorhabditis elegans]]'' is an often used simple model for [[multicellular organism]]s. The zebrafish ''[[Brachydanio rerio]]'' is used for many developmental studies on the molecular level and the flower ''[[Arabidopsis thaliana]]'' is a model organism for flowering plants. The [[Japanese pufferfish]] (''[[Takifugu rubripes]]'') and the [[spotted green pufferfish]] (''[[Tetraodon nigroviridis]]'') are interesting because of their small and compact genomes, containing very little non-coding DNA compared to most species.
<ref>
[http://news.bbc.co.uk/1/hi/sci/tech/3760766.stm BBC article ''Human gene number slashed'' from Wednesday, 20 October, 2004]
</ref>
<ref>
[http://www.cbse.ucsc.edu/news/2003/10/16/pufferfish_fruitfly/index.shtml CBSE News, Thursday October 16, 2003]
</ref>
The mammals dog (''[[Canis familiaris]]''),
<ref>
[http://www.genome.gov/12511476 NHGRI, pressrelease of the publishing of the dog genome]
</ref>
brown rat (''[[Rattus norvegicus]]''), mouse (''[[Mus musculus]]''), and chimpanzee (''[[Pan troglodytes]]'') are all important model animals in medical research.
== Bacteriophage genomics ==
[[Bacteriophage]]s have played and continue to play a key role in bacterial [[genetics]] and [[molecular biology]]. Historically, they were used to define [[gene]] structure and gene regulation. Also the first [[genome]] to be sequenced was a [[bacteriophage]]. However, bacteriophage research did not lead the genomics revolution, which is clearly dominated by bacterial genomics. Only very recently has the study of bacteriophage genomes become prominent, thereby enabling researchers to understand the mechanisms underlying [[phage]] evolution. Bacteriophage genome sequences can be obtained through direct sequencing of isolated bacteriophages, but can also be derived as part of microbial genomes. Analysis of bacterial genomes has shown that a substantial amount of microbial DNA consists of [[prophage]] sequences and prophage-like elements. A detailed database mining of these sequences offers insights into the role of prophages in shaping the bacterial genome.<ref name=McGrath>{{cite book | author = Mc Grath S and van Sinderen D (editors). | title = Bacteriophage: Genetics and Molecular Biology | edition = 1st ed. | publisher = Caister Academic Press | year = 2007 | url=http://www.horizonpress.com/phage | id = [http://www.horizonpress.com/phage ISBN 978-1-904455-14-1 ]}}</ref>
== Cyanobacteria genomics ==
At present there are 24 [[cyanobacteria]] for which a total genome sequence is available. 15 of these cyanobacteria come from the marine environment. These are six ''[[Prochlorococcus]]'' strains, seven marine ''[[Synechococcus]]'' strains, ''[[Trichodesmium erythraeum]]'' IMS101 and ''[[Crocosphaera watsonii]]'' [[WH8501. Several studies have demonstrated how these sequences could be used very successfully to infer important ecological and physiological characteristics of marine cyanobacteria. However, there are many more genome projects currently in progress, amongst those there are further ''[[Prochlorococcus]]'' and marine ''[[Synechococcus]]'' isolates, ''[[Acaryochloris]]'' and ''[[Prochloron]]'', the N<sub>2</sub>-fixing filamentous cyanobacteria ''[[Nodularia spumigena]]'', ''[[Lyngbya aestuarii]]'' and ''[[Lyngbya majuscula]]'', as well as [[bacteriophage]]s infecting marine cyanobaceria. Thus, the growing body of genome information can also be tapped in a more general way to address global problems by applying a comparative approach. Some new and exciting examples of progress in this field are the identification of genes for regulatory RNAs, insights into the evolutionary origin of [[photosynthesis]], or estimation of the contribution of horizontal gene transfer to the genomes that have been analyzed.<ref name=Herrero>{{cite book | author = Herrero A and Flores E (editor). | title = The Cyanobacteria: Molecular Biology, Genomics and Evolution | edition = 1st ed. | publisher = Caister Academic Press | year = 2008 | url=http://www.horizonpress.com/cyan | id = [http://www.horizonpress.com/cyan ISBN 978-1-904455-15-8 ]}}</ref>
== See also ==
* [[Computational genomics]]
* [[Nitrogenomics]]
* [[Metagenomics]]
* [[Personal genomics]]
== References ==
<references/>
== External links ==
* [http://www.genomicsdirectory.com Genomics Directory]: A one-stop biotechnology resource center for bioentrepreneurs, scientists, and students
* [http://www.biomedcentral.com/bmcgenomics/ BMC Genomics]: A BMC journal on Genomics
* [http://www.genomics.co.uk/companylist.php Genomics]: UK companies and laboratories* [http://www.elsevier.com/wps/find/journaldescription.cws_home/622838/description#description Genomics journal]
* [http://genomics.org Genomics.org]: An openfree wiki based Genomics portal
* [http://www.genome.gov/ NHGRI]: US government's genome institute
* [http://www.springer.com/humana+press/pharmacology+and+toxicology/book/978-1-58829-887-4 Pharmacogenomics in Drug Discovery and Development], a book on pharmacogenomics, diseases, personalized medicine, and therapeutics
*[http://www.zpu-journal.ru/en/articles/detail.php?ID=342 Tishchenko P. D. Genomics: New Science in the New Cultural Situation]
* [http://www.lcg.unam.mx/ Undergraduate program on Genomic Sciences (spanish)]: One of the first undergraduate programs in the world
{{genomics-footer}}
{{genetics-footer}}
{{biology-footer}}
[[Category:Genomics| ]]
[[ar:علم الجينوم]]
[[bs:Genomika]]
[[ca:Genòmica]]
[[de:Genomik]]
[[es:Genómica]]
[[fr:Génomique]]
[[ko:유전체학]]
[[id:Genomika]]
[[it:Genomica]]
[[he:גנומיקה]]
[[lt:Genomika]]
[[hu:Genomika]]
[[nl:Genomica]]
[[ja:ゲノミクス]]
[[pl:Genomika]]
[[pt:Genômica]]
[[ru:Геномика]]
[[sr:Геномика]]
[[sh:Genomika]]
[[sv:Genomik]]
[[th:จีโนมิกส์]]