Genome manipulation using l-integrase-mediated recombination

Precise and safe genome engineering of mammalian cells plays an important role in biotechnology and molecular medicine. Several random (viral, transposon, plasmid-based) and site-specific (endonuclease-based) genome-editing tools have been previously employed to meet the scientific and translatio...

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Main Author: Harshyaa Makhija
Other Authors: Peter Droge
Format: Theses and Dissertations
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/70616
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-706162023-02-28T18:31:26Z Genome manipulation using l-integrase-mediated recombination Harshyaa Makhija Peter Droge School of Biological Sciences DRNTU::Science::Biological sciences Precise and safe genome engineering of mammalian cells plays an important role in biotechnology and molecular medicine. Several random (viral, transposon, plasmid-based) and site-specific (endonuclease-based) genome-editing tools have been previously employed to meet the scientific and translational needs. They could, for example, help to solve fundamental biological problems and be employed for therapeutic purposes. However, inherent safety issues such as genotoxicity, insertional mutagenesis, off-target site activities and other unforeseen risks make existing methods suboptimal for clinical applications. Hence, improved genome manipulation tools are needed. In this context, we have developed a novel site-specific transgene insertion tool for the human genome. Our system is derived from phage lambda integrase {f.. -lnt) that not only exhibits high target site specificity, but also integrates large DNA molecules into a safe harbor site of a bacterial genome. To this end, a novel, highly active lnt variant (lnt-C3) has been jointly developed with collaborators, which catalyzes site-specific transgene insertion into a particular sequence (attH4X) found in a subset of human Long INterspersed Elements (LJNE-1). We have validated our system for single-copy integration oftransgenes (~8kb) in various cell lines including human embryonic stem cells (hESCs). The integrated transgenes remain stable and functional , perhaps due to a more permissive chromatin structure at the targeted LINE-1 elements. In addition, our safety profiling data indicates that expression of tnt is safe with respect to cell toxicity and genomic integrity. Transcriptome analysis of the targeted clones revealed 20-40/20,000 (~0 . 2%) differentially expressed genes, suggesting that the global cellular RNA profile remains largely undisturbed. It has also been known that LINE-1 elements are more prevalent in ATrich, low-recombining and sparse gene regions of the genome. Thus, based on our studies, at least a subset of attH4X can be considered as putative human genome ' safe harbor sites' . Therefore, predetermined targeting using our system will reduce or even eliminate the problems associated with other currently used transgenesis tools. Our tool would thus be an addition to the existing genome editing toolbox. It will find broad applications in stem cellrelated therapies, bio-production of therapeutic proteins, CAR-T cell engineering and other human genome engineering applications that require multi-transgenes. ​Doctor of Philosophy (SBS) 2017-05-05T06:15:59Z 2017-05-05T06:15:59Z 2017 Thesis Harshyaa Makhija. (2017). Genome manipulation using l-integrase-mediated recombination. Doctoral thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/70616 10.32657/10356/70616 en 175 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Biological sciences
spellingShingle DRNTU::Science::Biological sciences
Harshyaa Makhija
Genome manipulation using l-integrase-mediated recombination
description Precise and safe genome engineering of mammalian cells plays an important role in biotechnology and molecular medicine. Several random (viral, transposon, plasmid-based) and site-specific (endonuclease-based) genome-editing tools have been previously employed to meet the scientific and translational needs. They could, for example, help to solve fundamental biological problems and be employed for therapeutic purposes. However, inherent safety issues such as genotoxicity, insertional mutagenesis, off-target site activities and other unforeseen risks make existing methods suboptimal for clinical applications. Hence, improved genome manipulation tools are needed. In this context, we have developed a novel site-specific transgene insertion tool for the human genome. Our system is derived from phage lambda integrase {f.. -lnt) that not only exhibits high target site specificity, but also integrates large DNA molecules into a safe harbor site of a bacterial genome. To this end, a novel, highly active lnt variant (lnt-C3) has been jointly developed with collaborators, which catalyzes site-specific transgene insertion into a particular sequence (attH4X) found in a subset of human Long INterspersed Elements (LJNE-1). We have validated our system for single-copy integration oftransgenes (~8kb) in various cell lines including human embryonic stem cells (hESCs). The integrated transgenes remain stable and functional , perhaps due to a more permissive chromatin structure at the targeted LINE-1 elements. In addition, our safety profiling data indicates that expression of tnt is safe with respect to cell toxicity and genomic integrity. Transcriptome analysis of the targeted clones revealed 20-40/20,000 (~0 . 2%) differentially expressed genes, suggesting that the global cellular RNA profile remains largely undisturbed. It has also been known that LINE-1 elements are more prevalent in ATrich, low-recombining and sparse gene regions of the genome. Thus, based on our studies, at least a subset of attH4X can be considered as putative human genome ' safe harbor sites' . Therefore, predetermined targeting using our system will reduce or even eliminate the problems associated with other currently used transgenesis tools. Our tool would thus be an addition to the existing genome editing toolbox. It will find broad applications in stem cellrelated therapies, bio-production of therapeutic proteins, CAR-T cell engineering and other human genome engineering applications that require multi-transgenes.
author2 Peter Droge
author_facet Peter Droge
Harshyaa Makhija
format Theses and Dissertations
author Harshyaa Makhija
author_sort Harshyaa Makhija
title Genome manipulation using l-integrase-mediated recombination
title_short Genome manipulation using l-integrase-mediated recombination
title_full Genome manipulation using l-integrase-mediated recombination
title_fullStr Genome manipulation using l-integrase-mediated recombination
title_full_unstemmed Genome manipulation using l-integrase-mediated recombination
title_sort genome manipulation using l-integrase-mediated recombination
publishDate 2017
url http://hdl.handle.net/10356/70616
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