Massive parallel sequencingMassive parallel sequencing or massively parallel sequencing is any of several high-throughput approaches to DNA sequencing using the concept of massively parallel processing; it is also called next-generation sequencing (NGS) or second-generation sequencing. Some of these technologies emerged between 1993 and 1998 and have been commercially available since 2005. These technologies use miniaturized and parallelized platforms for sequencing of 1 million to 43 billion short reads (50 to 400 bases each) per instrument run.
Séquençage de l'ADNcadre|Résultat du séquençage par la méthode de Sanger. L'ordre de chaque bande indique la position d'un nucléotide A,T,C ou G Le séquençage de l'ADN consiste à déterminer l'ordre d'enchaînement des nucléotides pour un fragment d’ADN donné. La séquence d’ADN contient l’information nécessaire aux êtres vivants pour survivre et se reproduire. Déterminer cette séquence est donc utile aussi bien pour les recherches visant à savoir comment vivent les organismes que pour des sujets appliqués.
SéquençageEn biochimie, le séquençage consiste à déterminer l'ordre linéaire des composants d'une macromolécule (les acides aminés d'une protéine, les nucléotides d'un acide nucléique comme l'ADN, les monosaccharides d'un polysaccharide, etc.). En génétique, le séquençage concerne la détermination de la séquence des gènes voire des chromosomes, voire du génome complet, ce qui techniquement revient à effectuer le séquençage de l'ADN constituant ces gènes ou ces chromosomes.
Whole genome sequencingWhole genome sequencing (WGS), also known as full genome sequencing, complete genome sequencing, or entire genome sequencing, is the process of determining the entirety, or nearly the entirety, of the DNA sequence of an organism's genome at a single time. This entails sequencing all of an organism's chromosomal DNA as well as DNA contained in the mitochondria and, for plants, in the chloroplast. Whole genome sequencing has largely been used as a research tool, but was being introduced to clinics in 2014.
Exome sequencingExome sequencing, also known as whole exome sequencing (WES), is a genomic technique for sequencing all of the protein-coding regions of genes in a genome (known as the exome). It consists of two steps: the first step is to select only the subset of DNA that encodes proteins. These regions are known as exons—humans have about 180,000 exons, constituting about 1% of the human genome, or approximately 30 million base pairs. The second step is to sequence the exonic DNA using any high-throughput DNA sequencing technology.