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Combinational Treatment of Trichostatin A and Vitamin C Improves the Efficiency of Cloning Mice by Somatic Cell Nuclear Transfer
Published on: April 26, 2018
Epigenetic modification with trichostatin A does not correct specific errors of somatic cell nuclear transfer at the
Sayyed Morteza Hosseini1,2, Isabelle Dufort3, Julie Nieminen4
1Department of Reproduction and Development, Reproductive Biomedicine Centre, Royan Institute for Biotechnology, ACECR, Isfahan, Iran. smhosseini@royaninstitute.org.
Background:
The limited duration and compromised efficiency of oocyte-mediated reprogramming, which occurs during the early hours following somatic cell nuclear transfer (SCNT), may significantly interfere with epigenetic reprogramming, contributing to the high incidence of ill/fatal transcriptional phenotypes and physiological anomalies occurring later during pre- and post-implantation events. A potent histone deacetylase inhibitor, trichostatin A (TSA), was used to understand the effects of assisted epigenetic modifications on transcriptional profiles of SCNT blastocysts and to identify specific or categories of genes affected.
Results:
TSA improved the yield and quality of in vitro embryo development compared to control (CTR-NT). Significance analysis of microarray results revealed that of 37,238 targeted gene transcripts represented on the microarray slide, a relatively small number of genes were differentially expressed in CTR-NT (1592 = 4.3 %) and TSA-NT (1907 = 5.1 %) compared to IVF embryos. For both SCNT groups, the majority of downregulated and more than half of upregulated genes were common and as much as 15 % of all deregulated transcripts were located on chromosome X. Correspondence analysis clustered CTR-NT and IVF transcriptomes close together regardless of the embryo production method, whereas TSA changed SCNT transcriptome to a very clearly separated cluster. Ontological classification of deregulated genes using IPA uncovered a variety of functional categories similarly affected in both SCNT groups with a preponderance of genes required for biological processes. Examination of genes involved in different canonical pathways revealed that the WNT and FGF pathways were similarly affected in both SCNT groups. Although TSA markedly changed epigenetic reprogramming of donor cells (DNA-methylation, H3K9 acetylation), reconstituted oocytes (5mC, 5hmC), and blastocysts (DNA-methylation, H3K9 acetylation), these changes did not recapitulate parallel marked changes in chromatin remodeling, and nascent mRNA and OCT4-EGFP expression of TSA-NT vs. CRT-NT embryos.
Conclusions:
The results obtained suggest that despite the extensive reprogramming of donor cells that occurred by the blastocyst stage, SCNT-specific errors are of a non-random nature in bovine and are not responsive to epigenetic modifications by TSA.
Insights
Trichostatin A (TSA) improved early embryo development in somatic cell nuclear transfer (SCNT) but did not fully correct SCNT-specific gene expression errors. Bovine SCNT errors are non-random and resistant to TSA-assisted epigenetic modifications.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Epigenetics
Background:
- Somatic cell nuclear transfer (SCNT) efficiency is limited by oocyte reprogramming, leading to developmental issues.
- Epigenetic reprogramming errors in SCNT contribute to transcriptional and physiological anomalies.
Purpose of the Study:
- To investigate the impact of trichostatin A (TSA) on epigenetic modifications and transcriptional profiles in SCNT blastocysts.
- To identify specific genes and pathways affected by TSA-assisted epigenetic reprogramming in bovine SCNT.
Main Methods:
- Somatic cell nuclear transfer (SCNT) in bovine embryos with and without TSA treatment.
- Microarray analysis to assess global gene expression profiles.
- Bioinformatic analysis including correspondence analysis and ontological classification.
Main Results:
- TSA enhanced in vitro embryo development compared to control SCNT (CTR-NT).
- TSA treatment shifted the SCNT transcriptome, clustering it separately from IVF and CTR-NT embryos.
- Despite significant epigenetic changes induced by TSA, chromatin remodeling and gene expression markers (OCT4-EGFP) were not fully normalized in TSA-NT embryos compared to CTR-NT.
Conclusions:
- SCNT-specific errors in bovine embryos are non-random and persist despite TSA-induced epigenetic modifications.
- TSA treatment partially improves SCNT outcomes but does not resolve fundamental reprogramming defects.
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