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Current status and perspectives of genome editing technology for microalgae

机译:微藻基因组编辑技术的现状与展望

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摘要

Genome editing techniques are critical for manipulating genes not only to investigate their functions in biology but also to improve traits for genetic engineering in biotechnology. Genome editing has been greatly facilitated by engineered nucleases, dubbed molecular scissors, including zinc-finger nuclease (ZFN), TAL effector endonuclease (TALEN) and clustered regularly interspaced palindromic sequences (CRISPR)/Cas9. In particular, CRISPR/Cas9 has revolutionized genome editing fields with its simplicity, efficiency and accuracy compared to previous nucleases. CRISPR/Cas9-induced genome editing is being used in numerous organisms including microalgae. Microalgae have been subjected to extensive genetic and biological engineering due to their great potential as sustainable biofuel and chemical feedstocks. However, progress in microalgal engineering is slow mainly due to a lack of a proper transformation toolbox, and the same problem also applies to genome editing techniques. Given these problems, there are a few reports on successful genome editing in microalgae. It is, thus, time to consider the problems and solutions of genome editing in microalgae as well as further applications of this exciting technology for other scientific and engineering purposes.
机译:基因组编辑技术不仅对于研究基因在生物学中的功能,而且对于改善生物技术中基因工程的特征至关重要。基因工程编辑已被工程化的核酸酶,配成分子剪刀(包括锌指核酸酶(ZFN),TAL效应核酸内切酶(TALEN))和成簇规则间隔的回文序列(CRISPR)/ Cas9极大地促进了。尤其是,CRISPR / Cas9与以前的核酸酶相比,其简单性,效率和准确性彻底改变了基因组编辑领域。 CRISPR / Cas9诱导的基因组编辑被许多生物(包括微藻)使用。由于微藻作为可持续生物燃料和化学原料的巨大潜力,因此已经进行了广泛的基因和生物工程。然而,微藻工程的进展缓慢,主要是由于缺乏合适的转化工具箱,并且相同的问题也适用于基因组编辑技术。鉴于这些问题,有一些关于微藻基因组编辑成功的报道。因此,现在是时候考虑微藻中基因组编辑的问题和解决方案,以及该令人兴奋的技术在其他科学和工程目的中的进一步应用了。

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