Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition
<i>Sleeping Beauty</i> (SB) is a transposon system that has been widely used as a genetic engineering tool. Central to the development of any transposon as a research tool is the ability to integrate a foreign piece of DNA into the cellular genome. Driven by the need for efficient transp...
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doaj-63ddbcb3764f4f958772f33b9031f21d2021-01-09T00:00:06ZengMDPI AGViruses1999-49152021-01-0113767610.3390/v13010076Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste TranspositionMatthias T. Ochmann0Zoltán Ivics1Division of Medical Biotechnology, Paul Ehrlich Institute, 63225 Langen, GermanyDivision of Medical Biotechnology, Paul Ehrlich Institute, 63225 Langen, Germany<i>Sleeping Beauty</i> (SB) is a transposon system that has been widely used as a genetic engineering tool. Central to the development of any transposon as a research tool is the ability to integrate a foreign piece of DNA into the cellular genome. Driven by the need for efficient transposon-based gene vector systems, extensive studies have largely elucidated the molecular actors and actions taking place during SB transposition. Close transposon relatives and other recombination enzymes, including retroviral integrases, have served as useful models to infer functional information relevant to SB. Recently obtained structural data on the SB transposase enable a direct insight into the workings of this enzyme. These efforts cumulatively allowed the development of novel variants of SB that offer advanced possibilities for genetic engineering due to their hyperactivity, integration deficiency, or targeting capacity. However, many aspects of the process of transposition remain poorly understood and require further investigation. We anticipate that continued investigations into the structure–function relationships of SB transposition will enable the development of new generations of transposition-based vector systems, thereby facilitating the use of SB in preclinical studies and clinical trials.https://www.mdpi.com/1999-4915/13/1/76transposonstrand transferexcisionsynaptic complexDNA repairintegration |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Matthias T. Ochmann Zoltán Ivics |
spellingShingle |
Matthias T. Ochmann Zoltán Ivics Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition Viruses transposon strand transfer excision synaptic complex DNA repair integration |
author_facet |
Matthias T. Ochmann Zoltán Ivics |
author_sort |
Matthias T. Ochmann |
title |
Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition |
title_short |
Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition |
title_full |
Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition |
title_fullStr |
Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition |
title_full_unstemmed |
Jumping Ahead with <i>Sleeping Beauty</i>: Mechanistic Insights into Cut-and-Paste Transposition |
title_sort |
jumping ahead with <i>sleeping beauty</i>: mechanistic insights into cut-and-paste transposition |
publisher |
MDPI AG |
series |
Viruses |
issn |
1999-4915 |
publishDate |
2021-01-01 |
description |
<i>Sleeping Beauty</i> (SB) is a transposon system that has been widely used as a genetic engineering tool. Central to the development of any transposon as a research tool is the ability to integrate a foreign piece of DNA into the cellular genome. Driven by the need for efficient transposon-based gene vector systems, extensive studies have largely elucidated the molecular actors and actions taking place during SB transposition. Close transposon relatives and other recombination enzymes, including retroviral integrases, have served as useful models to infer functional information relevant to SB. Recently obtained structural data on the SB transposase enable a direct insight into the workings of this enzyme. These efforts cumulatively allowed the development of novel variants of SB that offer advanced possibilities for genetic engineering due to their hyperactivity, integration deficiency, or targeting capacity. However, many aspects of the process of transposition remain poorly understood and require further investigation. We anticipate that continued investigations into the structure–function relationships of SB transposition will enable the development of new generations of transposition-based vector systems, thereby facilitating the use of SB in preclinical studies and clinical trials. |
topic |
transposon strand transfer excision synaptic complex DNA repair integration |
url |
https://www.mdpi.com/1999-4915/13/1/76 |
work_keys_str_mv |
AT matthiastochmann jumpingaheadwithisleepingbeautyimechanisticinsightsintocutandpastetransposition AT zoltanivics jumpingaheadwithisleepingbeautyimechanisticinsightsintocutandpastetransposition |
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