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.

Cellular Reprogramming
|December 31, 2014
PubMed

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.

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