Changes in Methylation Patterns of Tumor Suppressor Genes during Extended Human Embryonic Stem Cell Cultures

Author:

Kang Kyung Min1ORCID,Lee Jeoung Eun2,Park Ji Eun1,Kim Hyunjin1,Jang Hee Yeon1,Go Minyeon13,Lee Dong Ryul3,Shim Sung Han3ORCID

Affiliation:

1. Center for Genome Diagnostics, CHA Biotech Inc., Seoul 06135, Republic of Korea

2. CHA Advanced Research Institute, CHA University, Seongnam, Gyunggi-do 13488, Republic of Korea

3. Department of Biomedical Science, College of Life Science, CHA University, Seongnam 13488, Republic of Korea

Abstract

While studies on embryonic stem cells have been actively conducted, little is known about the epigenetic mechanisms in human embryonic stem cells (hESCs) in extended culture systems. Here, we investigated whether CpG island (CGI) methylation patterns of 24 tumor suppressor genes could be maintained during extended hESC cultures. In total, 10 hESC lines were analyzed. For each cell line, genomic DNA was extracted from early and late passages of cell cultures. CGI methylation levels of 24 tumor suppressor genes were analyzed using methylation-specific multiplex ligation-dependent probe amplification (MS-MLPA), pyrosequencing, and real-time polymerase chain reaction (PCR). Different CGI methylation patterns of CASP8, FHIT, and CHFR genes were identified in between early and late passages in some hESC lines. CGI methylation levels of CASP8 significantly increased at late passage in CHA-36, CHA-40, and CHA-42 cell lines compared to those at early passage. The CGI methylation of the FHIT gene was higher at late passage than at early passage in CHA-15, CHA-31, CHA-32, and iPS (FS)-1 cell lines but decreased at the late passage in CHA-20 and H1 cell lines. Different CGI methylation patterns were detected for the CHFR gene only in iPS (FS)-1, and the level significantly increased at late passage. Thus, our findings show that CGI methylation patterns could be altered during prolonged ESC cultures and examining these epigenetic changes is important to assess the maintenance, differentiation, and clinical usage of stem cells.

Funder

National Research Foundation of Korea

Publisher

Hindawi Limited

Subject

Cell Biology,Molecular Biology

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