Lotti Samantha N, Polkoff Kathryn M, Rubessa Marcello, Wheeler Matthew B
a Department of Animal Sciences , University of Illinois at Urbana-Champaign , Urbana , Illinois , USA.
b Carl R. Woese Institute for Genomic Biology, University of Illinois , Urbana , IL , USA.
Anim Biotechnol. 2017 Jul 3;28(3):198-210. doi: 10.1080/10495398.2016.1261874. Epub 2017 Jan 19.
In the past few years, new technologies have arisen that enable higher efficiency of gene editing. With the increase ease of using gene editing technologies, it is important to consider the best method for transferring new genetic material to livestock animals. Microinjection is a technique that has proven to be effective in mice but is less efficient in large livestock animals. Over the years, a variety of methods have been used for cloning as well as gene transfer including; nuclear transfer, sperm mediated gene transfer (SMGT), and liposome-mediated DNA transfer. This review looks at the different success rate of these methods and how they have evolved to become more efficient. As well as gene editing technologies, including Zinc-finger nucleases (ZFNs), transcription activator-like effector nucleases (TALENs), and the most recent clustered regulatory interspaced short palindromic repeats (CRISPRs). Through the advancements in gene-editing technologies, generating transgenic animals is now more accessible and affordable. The goals of producing transgenic animals are to 1) increase our understanding of biology and biomedical science; 2) increase our ability to produce more efficient animals; and 3) produce disease resistant animals. ZFNs, TALENs, and CRISPRs combined with gene transfer methods increase the possibility of achieving these goals.
在过去几年中,出现了能够提高基因编辑效率的新技术。随着基因编辑技术使用的日益简便,考虑将新的遗传物质导入家畜的最佳方法变得很重要。显微注射技术在小鼠中已被证明是有效的,但在大型家畜中效率较低。多年来,已使用多种方法进行克隆以及基因转移,包括核转移、精子介导的基因转移(SMGT)和脂质体介导的DNA转移。本综述探讨了这些方法的不同成功率以及它们如何发展得更高效。还包括基因编辑技术,如锌指核酸酶(ZFN)、转录激活样效应核酸酶(TALEN)和最新的成簇规律间隔短回文重复序列(CRISPR)。通过基因编辑技术的进步,现在生产转基因动物变得更容易且成本更低。生产转基因动物的目标是:1)增进我们对生物学和生物医学科学的理解;2)提高我们生产更高效动物的能力;3)培育抗病动物。ZFN、TALEN和CRISPR与基因转移方法相结合增加了实现这些目标的可能性。