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Episomes and Transposases-Utilities to Maintain Transgene Expression from Nonviral Vectors

Overview
Journal Genes (Basel)
Publisher MDPI
Date 2022 Oct 27
PMID 36292757
Authors
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Abstract

The efficient delivery and stable transgene expression are critical for applications in gene therapy. While carefully selected and engineered viral vectors allowed for remarkable clinical successes, they still bear significant safety risks. Thus, nonviral vectors are a sound alternative and avoid genotoxicity and adverse immunological reactions. Nonviral vector systems have been extensively studied and refined during the last decades. Emerging knowledge of the epigenetic regulation of replication and spatial chromatin organisation, as well as new technologies, such as Crispr/Cas, were employed to enhance the performance of different nonviral vector systems. Thus, nonviral vectors are in focus and hold some promising perspectives for future applications in gene therapy. This review addresses three prominent nonviral vector systems: the Sleeping Beauty transposase, S/MAR-based episomes, and viral plasmid replicon-based EBV vectors. Exemplarily, we review different utilities, modifications, and new concepts that were pursued to overcome limitations regarding stable transgene expression and mitotic stability. New insights into the nuclear localisation of nonviral vector molecules and the potential consequences thereof are highlighted. Finally, we discuss the remaining limitations and provide an outlook on possible future developments in nonviral vector technology.

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References
1.
Ponomartsev S, Sinenko S, Skvortsova E, Liskovykh M, Voropaev I, Savina M . Human Alphoid Artificial Chromosome as a Gene Therapy Vector for the Developing Hemophilia A Model in Mice. Cells. 2020; 9(4). PMC: 7226776. DOI: 10.3390/cells9040879. View

2.
Sears J, Ujihara M, Wong S, Ott C, Middeldorp J, Aiyar A . The amino terminus of Epstein-Barr Virus (EBV) nuclear antigen 1 contains AT hooks that facilitate the replication and partitioning of latent EBV genomes by tethering them to cellular chromosomes. J Virol. 2004; 78(21):11487-505. PMC: 523237. DOI: 10.1128/JVI.78.21.11487-11505.2004. View

3.
Cayrou C, Ballester B, Peiffer I, Fenouil R, Coulombe P, Andrau J . The chromatin environment shapes DNA replication origin organization and defines origin classes. Genome Res. 2015; 25(12):1873-85. PMC: 4665008. DOI: 10.1101/gr.192799.115. View

4.
Norseen J, Thomae A, Sridharan V, Aiyar A, Schepers A, Lieberman P . RNA-dependent recruitment of the origin recognition complex. EMBO J. 2008; 27(22):3024-35. PMC: 2585170. DOI: 10.1038/emboj.2008.221. View

5.
Turchiano G, Latella M, Gogol-Doring A, Cattoglio C, Mavilio F, Izsvak Z . Genomic analysis of Sleeping Beauty transposon integration in human somatic cells. PLoS One. 2014; 9(11):e112712. PMC: 4229213. DOI: 10.1371/journal.pone.0112712. View