KRUTÁ, Miriama, Monika ŠENEKLOVÁ, Jan RAŠKA, Anton SALYKIN, Lenka ZERZÁNKOVÁ, Martin PEŠL, Eva BÁRTOVÁ, Michal FRANEK, Aneta BAUMEISTEROVÁ, Stanislava KOŠKOVÁ, Kai J. NEELSEN, Aleš HAMPL, Petr DVOŘÁK and Vladimír ROTREKL. Mutation frequency dynamics in HPRT locus in culture adapted hESCs and iPSCs correspond to their differentiated counterparts. Stem Cells and Development. Mary Ann Liebert, Inc., 2014, vol. 23, No 20, p. 2443-2454. ISSN 1547-3287. Available from: https://dx.doi.org/10.1089/scd.2013.0611.
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Basic information
Original name Mutation frequency dynamics in HPRT locus in culture adapted hESCs and iPSCs correspond to their differentiated counterparts
Authors KRUTÁ, Miriama (703 Slovakia, belonging to the institution), Monika ŠENEKLOVÁ (203 Czech Republic, belonging to the institution), Jan RAŠKA (203 Czech Republic, belonging to the institution), Anton SALYKIN (643 Russian Federation, belonging to the institution), Lenka ZERZÁNKOVÁ (203 Czech Republic, belonging to the institution), Martin PEŠL (203 Czech Republic, belonging to the institution), Eva BÁRTOVÁ (203 Czech Republic), Michal FRANEK (203 Czech Republic), Aneta BAUMEISTEROVÁ (703 Slovakia, belonging to the institution), Stanislava KOŠKOVÁ (203 Czech Republic), Kai J. NEELSEN (208 Denmark), Aleš HAMPL (203 Czech Republic, belonging to the institution), Petr DVOŘÁK (203 Czech Republic, belonging to the institution) and Vladimír ROTREKL (203 Czech Republic, guarantor, belonging to the institution).
Edition Stem Cells and Development, Mary Ann Liebert, Inc. 2014, 1547-3287.
Other information
Original language English
Type of outcome Article in a journal
Field of Study Genetics and molecular biology
Country of publisher United States of America
Confidentiality degree is not subject to a state or trade secret
Impact factor Impact factor: 3.727
RIV identification code RIV/00216224:14110/14:00073651
Organization unit Faculty of Medicine
Doi http://dx.doi.org/10.1089/scd.2013.0611
UT WoS 000342614300004
Keywords in English mutation frequency; human embryonic stem cells; induced pluripotent stem cells; hypoxanthine phosphoribosyltransferase; base excision repair; apurinic/apyrimidinic endonuclease
Tags EL OK
Tags International impact, Reviewed
Changed by Changed by: Ing. Mgr. Věra Pospíšilíková, učo 9005. Changed: 10/11/2014 14:18.
Abstract
The genomic destabilization associated with the adaptation of human embryonic stem cells (hESCs) to culture conditions or the reprogramming of induced pluripotent stem cells (iPSCs) increases the risk of tumorigenesis upon the clinical use of these cells and decreases their value as a model for cell biology studies. Base excision repair (BER), a major genomic integrity maintenance mechanism, has been shown to fail during hESC adaptation. Here, we show that the increase in the mutation frequency (MF) caused by the inhibition of BER was similar to that caused by the hESC adaptation process. The increase in MF reflected the failure of DNA maintenance mechanisms and the subsequent increase in MF rather than being due solely to the accumulation of mutants over a prolonged period, as was previously suggested. The increase in the ionizing radiation-induced MF in adapted hESCs exceeded the induced MF in non-adapted hESCs and differentiated cells. Unlike hESCs, the overall DNA maintenance in iPSCs, which was reflected by the MF, was similar to that in differentiated cells regardless of the time spent in culture and despite the upregulation of several genes responsible for genome maintenance during the reprogramming process. Taken together, our results suggest that the changes in BER activity during the long-term cultivation of hESCs increase the mutagenic burden, whereas neither reprogramming nor long-term propagation in culture changes the MF in iPSCs.
Links
EE2.3.30.0009, research and development projectName: Zaměstnáním čerstvých absolventů doktorského studia k vědecké excelenci
GA13-19910S, research and development projectName: Studium dilatační kardiomyopatie spojené s Duchenovou svalovou dystrofií na modelové tkáni tvořené kardiomyocyty derivovanými z iPS buněk
Investor: Czech Science Foundation
GBP302/12/G157, research and development projectName: Dynamika a organizace chromosomů během buněčného cyklu a při diferenciaci v normě a patologii
Investor: Czech Science Foundation
MSM0021622430, plan (intention)Name: Funkční a molekulární charakteristiky nádorových a normálních kmenových buněk - identifikace cílů pro nová terapeutika a terapeutické strategie
Investor: Ministry of Education, Youth and Sports of the CR, Functional and molecular characteristics of cancer and normal stem cells - identification of targets for novel therapeutics and therapeutic strategies
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