A single amino acid switch converts the Sleeping Beauty transposase into an efficient unidirectional excisionase with utility in stem cell reprogramming

Author:

Kesselring Lisa1,Miskey Csaba1,Zuliani Cecilia2ORCID,Querques Irma2,Kapitonov Vladimir1,Laukó Andrea3,Fehér Anita3,Palazzo Antonio4,Diem Tanja1,Lustig Janna1,Sebe Attila1,Wang Yongming5,Dinnyés András3,Izsvák Zsuzsanna5,Barabas Orsolya2ORCID,Ivics Zoltán1ORCID

Affiliation:

1. Transposition and Genome Engineering, Division of Medical Biotechnology, Paul Ehrlich Institute, Langen, Germany

2. Structural and Computational Biology Unit, European Molecular Biology Laboratory, Heidelberg 69117, Germany

3. BioTalentum Ltd, Gödöllő, 2100 Gödöllő, Hungary

4. Department of Biology, University of Bari ‘Aldo Moro’, Italy

5. Mobile DNA, Max Delbrück Center for Molecular Medicine, Berlin, Germany

Abstract

AbstractThe Sleeping Beauty (SB) transposon is an advanced tool for genetic engineering and a useful model to investigate cut-and-paste DNA transposition in vertebrate cells. Here, we identify novel SB transposase mutants that display efficient and canonical excision but practically unmeasurable genomic re-integration. Based on phylogenetic analyses, we establish compensating amino acid replacements that fully rescue the integration defect of these mutants, suggesting epistasis between these amino acid residues. We further show that the transposons excised by the exc+/int− transposase mutants form extrachromosomal circles that cannot undergo a further round of transposition, thereby representing dead-end products of the excision reaction. Finally, we demonstrate the utility of the exc+/int− transposase in cassette removal for the generation of reprogramming factor-free induced pluripotent stem cells. Lack of genomic integration and formation of transposon circles following excision is reminiscent of signal sequence removal during V(D)J recombination, and implies that cut-and-paste DNA transposition can be converted to a unidirectional process by a single amino acid change.

Funder

EU FP7

European Molecular Biology Laboratory

Publisher

Oxford University Press (OUP)

Subject

Genetics

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