
transposase
Sign in to saveA transposase is any of a class of enzymes capable of binding to the end of a transposon and catalysing its movement to another part of a genome, typically by a cut-and-paste mechanism or a replicative mechanism, in a process known as transposition. The word "transposase" was coined by the individuals who cloned the enzyme required for transposition of the Tn3 transposon. The existence of transposons was postulated in the late 1940s by Barbara McClintock, who was studying the inheritance of maize, but the actual molecular basis for transposition was described by later groups. McClintock discov
Key facts
- Protein family.Symbol
- Dimer_Tnp_Tn5
- Protein family.Name
- Transposase Tn5 dimerisation domain
- Protein family.image
- PDB 1mur EBI.jpg
- Protein family.caption
- tn5 transposase: 20mer outside end 2 mn complex
- Protein family.Pfam
- PF02281
- Protein family.InterPro
- IPR003201
- Protein family.SCOP
- 1b7e
via Wikipedia infobox
Research
9,021 papers- Tn5 transposase and tagmentation procedures for massively scaled sequencing projects.Genome research · 2014
- A hyperactive piggyBac transposase for mammalian applications.Proceedings of the National Academy of Sciences of the United States of America · 2011
- Tn5 Transposase Applied in Genomics Research.International journal of molecular sciences · 2020
- Molecular evolution of a novel hyperactive Sleeping Beauty transposase enables robust stable gene transfer in vertebrates.Nature genetics · 2009
- Transposase-mediated gene modulation in the placenta.Placenta · 2017
via PubMed
Wikidata facts
Show 1 more fact
- Commons category
- Transposase
Sources (2)
via Wikidata · CC0
~11 min read
Article
5 sectionsContents
- Transposase Tn5
- Sleeping Beauty transposase
- Tn7 transposon
- References
- External links
A transposase is any of a class of enzymes capable of binding to the end of a transposon and catalysing its movement to another part of a genome, typically by a cut-and-paste mechanism or a replicative mechanism, in a process known as transposition. The word "transposase" was coined by the individuals who cloned the enzyme required for transposition of the Tn3 transposon. The existence of transposons was postulated in the late 1940s by Barbara McClintock, who was studying the inheritance of maize, but the actual molecular basis for transposition was described by later groups. McClintock discovered that some segments of chromosomes changed their position, jumping between different loci or from one chromosome to another. The repositioning of these transposons (which coded for color) allowed other genes for pigment to be expressed. Transposition in maize causes changes in color; however, in other organisms, such as bacteria, it can cause antibiotic resistance. Transposition is also important in creating genetic diversity within species and generating adaptability to changing living conditions.
Transposases are classified under EC number EC 2.7.7. Genes encoding transposases are widespread in the genomes of most organisms and are the most abundant genes known. During the course of human evolution, as much as 40% of the human genome has moved around via methods such as transposition of transposons.