Division of Animal Science, National Swine Resource and Research Center, University of Missouri, Columbia, Missouri.
Cancer Biotechnology Laboratory, Research Group on Cellular and Molecular Oncology, Postgraduate Program in Biotechnology, Technology Development Center, Federal University of Pelotas, Pelotas, Rio Grande do Sul, Brazil.
Mol Reprod Dev. 2019 Nov;86(11):1531-1547. doi: 10.1002/mrd.23260. Epub 2019 Sep 3.
An appropriate environment to optimize porcine preimplantation embryo production in vitro is required as genetically modified pigs have become indispensable for biomedical research and agriculture. To provide suitable culture conditions, omics technologies have been applied to elucidate which metabolic substrates and pathways are involved during early developmental processes. Metabolomic profiling and transcriptional analysis comparing in vivo- and in vitro-derived embryos have demonstrated the important role of amino acids during preimplantation development. Transcriptional profiling studies have been helpful in assessing epigenetic reprogramming agents to allow for the correction of gene expression during the cloning process. Along with this, nanotechnology, which is a highly promising field, has allowed for the use of engineered nanoplatforms in reproductive biology. A growing number of studies have explored the use of nanoengineered materials for sorting, labeling, and targeting purposes; which demonstrates their potential to become one of the solutions for precise delivery of molecules into gametes and embryos. Considering the contributions of omics and the recent progress in nanoscience, in this review, we focused on their emerging applications for current in vitro pig embryo production systems to optimize the generation of genetically modified animals.
需要一个合适的环境来优化猪体外胚胎的生产,因为转基因猪在生物医学研究和农业中已经变得不可或缺。为了提供合适的培养条件,组学技术已被应用于阐明在早期发育过程中涉及哪些代谢底物和途径。比较体内和体外胚胎的代谢组学分析和转录组学分析表明,氨基酸在胚胎植入前发育过程中起着重要作用。转录组学研究有助于评估表观遗传重编程剂,以允许在克隆过程中纠正基因表达。与此同时,纳米技术是一个极具前途的领域,它允许在生殖生物学中使用工程纳米平台。越来越多的研究探索了纳米工程材料在分类、标记和靶向方面的应用;这表明它们有可能成为将分子精确递送到配子和胚胎中的解决方案之一。考虑到组学的贡献和纳米科学的最新进展,在这篇综述中,我们重点介绍了它们在当前猪体外胚胎生产系统中的新兴应用,以优化遗传修饰动物的生成。