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Published on: July 30, 2020
Oxamflatin treatment enhances cloned porcine embryo development and nuclear reprogramming
Jiude Mao1, Ming-Tao Zhao, Kristin M Whitworth
11 National Swine Resource and Research Center, University of Missouri , Columbia, MO, 65211.
Abstract:
Faulty epigenetic reprogramming of somatic nuclei is thought to be the main reason for low cloning efficiency by somatic cell nuclear transfer (SCNT). Histone deacetylase inhibitors (HDACi), such as Scriptaid, improve developmental competence of SCNT embryos in several species. Another HDACi, Oxamflatin, is about 100 times more potent than Scriptaid in the ability to inhibit nuclear-specific HDACs. The present study determined the effects of Oxamflatin treatment on embryo development, DNA methylation, and gene expression. Oxamflatin treatment enhanced blastocyst formation of SCNT embryos in vitro. Embryo transfer produced more pigs born and fewer mummies from the Oxamflatin-treated group compared to the Scriptaid-treated positive control. Oxamflatin also decreased DNA methylation of POU5F1 regulatory elements and centromeric repeat elements in day-7 blastocysts. When compared to in vitro-fertilized (IVF) embryos, the methylation status of POU5F1, NANOG, and centromeric repeat was similar in the cloned embryos, indicating these genes were successfully reprogrammed. However, compared to the lack of methylation of XIST in day-7 IVF embryos, a higher methylation level in day-7 cloned embryos was observed, implying that X chromosomes were activated in day-7 IVF blastocysts, but were not fully activated in cloned embryos, i.e., reprogramming of XIST was delayed. A time-course analysis of XIST DNA methylation on day-13, -15, -17, and -19 in vivo embryos revealed that XIST methylation initiated at about day 13 and was not completed by day 19. The methylation of the XIST gene in day-19 control cloned embryos was delayed again when compared to in vivo embryos. However, methylation of XIST in Oxamflatin-treated embryos was comparable with in vivo embryos, which further demonstrated that Oxamflatin could accelerate the delayed reprogramming of XIST gene and thus might improve cloning efficiency.
Insights
Oxamflatin, a potent histone deacetylase inhibitor, significantly improved cloned pig embryo development and DNA reprogramming. This compound accelerated the delayed XIST gene reprogramming, offering a promising strategy to enhance somatic cell nuclear transfer (SCNT) efficiency.
Area of Science:
- Epigenetics
- Developmental Biology
- Reproductive Science
Background:
- Somatic cell nuclear transfer (SCNT) efficiency is limited by faulty epigenetic reprogramming.
- Histone deacetylase inhibitors (HDACi) like Scriptaid can improve SCNT embryo development.
- Oxamflatin is a more potent HDACi than Scriptaid, inhibiting nuclear-specific HDACs.
Purpose of the Study:
- To investigate the effects of Oxamflatin on SCNT embryo development, DNA methylation, and gene expression.
- To compare Oxamflatin's efficacy with Scriptaid in improving cloned pig development.
- To assess Oxamflatin's impact on the reprogramming of key developmental genes, including XIST.
Main Methods:
- Treatment of SCNT embryos with Oxamflatin and Scriptaid.
- In vitro assessment of blastocyst formation.
- In vivo embryo transfer to evaluate birth rates and developmental anomalies.
- DNA methylation analysis of specific genes (POU5F1, NANOG, XIST) and repeat elements in blastocysts.
- Time-course analysis of XIST DNA methylation in vivo and in cloned embryos.
Main Results:
- Oxamflatin treatment enhanced in vitro blastocyst formation of SCNT embryos.
- Oxamflatin-treated SCNT embryos resulted in higher birth rates and fewer mummies compared to Scriptaid-treated embryos.
- Oxamflatin reduced DNA methylation of POU5F1 and centromeric repeats, similar to in vitro-fertilized (IVF) embryos.
- XIST gene reprogramming was delayed in SCNT embryos but accelerated by Oxamflatin, comparable to in vivo development.
Conclusions:
- Oxamflatin effectively improves SCNT embryo development and epigenetic reprogramming in pigs.
- The compound accelerates the delayed XIST gene reprogramming, a key factor in improving cloning efficiency.
- Oxamflatin represents a promising therapeutic agent for enhancing somatic cell nuclear transfer outcomes.
Related Concept Videos
Cloning of Dolly the Sheep
Introduction to Nuclear Reprogramming
Methods of Nuclear Reprogramming

