Histone Variant macroH2A1.1 Enhances Nonhomologous End Joining-dependent DNA Double-strand-break Repair and Reprogramming Efficiency of Human iPSCs

Author:

Giallongo Sebastiano12,Řeháková Daniela1,Biagini Tommaso3,Lo Re Oriana14,Raina Priyanka5,Lochmanová Gabriela6,Zdráhal Zbyněk67,Resnick Igor489,Pata Pille1011,Pata Illar10,Mistrík Martin12,de Magalhães João Pedro5,Mazza Tommaso4,Koutná Irena113,Vinciguerra Manlio14

Affiliation:

1. International Clinical Research Center, St. Anne’s University Hospital, Brno, Czech Republic

2. Department of Biology, Faculty of Medicine, Masaryk University, Brno, Czech Republic

3. Laboratory of Bioinformatics, Fondazione IRCCS Casa Sollievo della Sofferenza, San Giovanni Rotondo, Italy

4. Department of Translational Stem Cell Biology, Research Institute of the Medical University of Varna (RIMUV), Varna, Bulgaria

5. Integrative Genomics of Ageing Group, Institute of Ageing and Chronic Disease, University of Liverpool, Liverpool, UK

6. Central European Institute of Technology, Masaryk University, Brno, Czech Republic

7. National Centre for Biomolecular Research, Masaryk University, Brno, Czech Republic

8. Program for Hematology, Immunology, BMT and Cell therapy, St. Marina University Hospital, Varna, Bulgaria

9. Department of Medical Genetics, Medical University of Varna, Varna, Bulgaria

10. Department of Chemistry and Biotechnology, Tallinn University of Technology, Tallinn, Estonia

11. IVEX Lab, Akadeemia 15, Tallinn, Estonia

12. Laboratory of Genome Integrity, Institute of Molecular and Translational Medicine, Faculty of Medicine and Dentistry, Palacky University, Olomouc, Czech Republic

13. Department of Histology and Embryology, Faculty of Medicine, Masaryk University, Brno, Czech Republic

Abstract

Abstract DNA damage repair (DDR) is a safeguard for genome integrity maintenance. Increasing DDR efficiency could increase the yield of induced pluripotent stem cells (iPSC) upon reprogramming from somatic cells. The epigenetic mechanisms governing DDR during iPSC reprogramming are not completely understood. Our goal was to evaluate the splicing isoforms of histone variant macroH2A1, macroH2A1.1, and macroH2A1.2, as potential regulators of DDR during iPSC reprogramming. GFP-Trap one-step isolation of mtagGFP-macroH2A1.1 or mtagGFP-macroH2A1.2 fusion proteins from overexpressing human cell lines, followed by liquid chromatography-tandem mass spectrometry analysis, uncovered macroH2A1.1 exclusive interaction with Poly-ADP Ribose Polymerase 1 (PARP1) and X-ray cross-complementing protein 1 (XRCC1). MacroH2A1.1 overexpression in U2OS-GFP reporter cells enhanced specifically nonhomologous end joining (NHEJ) repair pathway, while macroH2A1.1 knock-out (KO) mice showed an impaired DDR capacity. The exclusive interaction of macroH2A1.1, but not macroH2A1.2, with PARP1/XRCC1, was confirmed in human umbilical vein endothelial cells (HUVEC) undergoing reprogramming into iPSC through episomal vectors. In HUVEC, macroH2A1.1 overexpression activated transcriptional programs that enhanced DDR and reprogramming. Consistently, macroH2A1.1 but not macroH2A1.2 overexpression improved iPSC reprogramming. We propose the macroH2A1 splicing isoform macroH2A1.1 as a promising epigenetic target to improve iPSC genome stability and therapeutic potential.

Funder

European Regional Development Fund

Ministry of Health of the Czech Republic

European Commission Horizon 2020 Framework Program

Czech Science Foundation

Wellcome Trust

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,Molecular Medicine

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