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通过基因编辑技术在微藻中进行基因组工程。

Genome engineering via gene editing technologies in microalgae.

作者信息

Jeong Byeong-Ryool, Jang Junhwan, Jin EonSeon

机构信息

Department of Life Science, Research Institute for Natural Sciences, Hanyang University, Seoul 04763, Korea.

Department of Life Science, Research Institute for Natural Sciences, Hanyang University, Seoul 04763, Korea; Hanyang Institute of Bioscience and Biotechnology, Hanyang University, Seoul 04763, Korea.

出版信息

Bioresour Technol. 2023 Apr;373:128701. doi: 10.1016/j.biortech.2023.128701. Epub 2023 Feb 4.

Abstract

CRISPR-Cas has revolutionized genetic modification with its comparative simplicity and accuracy, and it can be used even at the genomic level. Microalgae are excellent feedstocks for biofuels and nutraceuticals because they contain high levels of fatty acids, carotenoids, and other metabolites; however, genome engineering for microalgae is not yet as developed as for other model organisms. Microalgal engineering at the genetic and metabolic levels is relatively well established, and a few genomic resources are available. Their genomic information was used for a "safe harbor" site for stable transgene expression in microalgae. This review proposes further genome engineering schemes including the construction of sgRNA libraries, pan-genomic and epigenomic resources, and mini-genomes, which can together be developed into synthetic biology for carbon-based engineering in microalgae. Acetyl-CoA is at the center of carbon metabolic pathways and is further reviewed for the production of molecules including terpenoids in microalgae.

摘要

CRISPR-Cas凭借其相对的简单性和准确性彻底改变了基因编辑,甚至可用于基因组层面。微藻是生物燃料和营养保健品的优质原料,因为它们含有大量脂肪酸、类胡萝卜素和其他代谢物;然而,微藻的基因组工程尚未像其他模式生物那样发达。微藻在基因和代谢水平上的工程相对成熟,并且有一些基因组资源可用。它们的基因组信息被用于微藻中稳定转基因表达的“安全港”位点。本综述提出了进一步的基因组工程方案,包括构建sgRNA文库、泛基因组和表观基因组资源以及微型基因组,这些可共同发展为微藻碳基工程的合成生物学。乙酰辅酶A处于碳代谢途径的中心,本文进一步探讨了其在微藻中用于生产包括萜类化合物在内的分子的情况。

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