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硅藻中的遗传与代谢工程。

Genetic and metabolic engineering in diatoms.

作者信息

Huang Weichao, Daboussi Fayza

机构信息

LISBP, Université de Toulouse, CNRS, INRA, INSA (LISBP-INSA Toulouse), 135 Avenue de Rangueil, 31077 Toulouse, France.

LISBP, Université de Toulouse, CNRS, INRA, INSA (LISBP-INSA Toulouse), 135 Avenue de Rangueil, 31077 Toulouse, France

出版信息

Philos Trans R Soc Lond B Biol Sci. 2017 Sep 5;372(1728). doi: 10.1098/rstb.2016.0411.

Abstract

Diatoms have attracted considerable attention due to their success in diverse environmental conditions, which probably is a consequence of their complex origins. Studies of their metabolism will provide insight into their adaptation capacity and are a prerequisite for metabolic engineering. Several years of investigation have led to the development of the genome engineering tools required for such studies, and a profusion of appropriate tools is now available for exploring and exploiting the metabolism of these organisms. Diatoms are highly prized in industrial biotechnology, due to both their richness in natural lipids and carotenoids and their ability to produce recombinant proteins, of considerable value in diverse markets. This review provides an overview of recent advances in genetic engineering methods for diatoms, from the development of gene expression cassettes and gene delivery methods, to cutting-edge genome-editing technologies. It also highlights the contributions of these rapid developments to both basic and applied research: they have improved our understanding of key physiological processes; and they have made it possible to modify the natural metabolism to favour the production of specific compounds or to produce new compounds for green chemistry and pharmaceutical applications.This article is part of the themed issue 'The peculiar carbon metabolism in diatoms'.

摘要

硅藻因其在各种环境条件下的成功而备受关注,这可能是其复杂起源的结果。对其代谢的研究将有助于深入了解其适应能力,并且是代谢工程的先决条件。数年的研究促成了此类研究所需的基因组工程工具的开发,现在有大量合适的工具可用于探索和利用这些生物的代谢。硅藻在工业生物技术中备受青睐,这既是因为它们富含天然脂质和类胡萝卜素,也因为它们能够生产重组蛋白,这些重组蛋白在不同市场具有相当大的价值。本综述概述了硅藻基因工程方法的最新进展,从基因表达盒和基因传递方法的开发到前沿的基因组编辑技术。它还强调了这些快速发展对基础研究和应用研究的贡献:它们增进了我们对关键生理过程的理解;并且使改变自然代谢以利于特定化合物的生产或为绿色化学和制药应用生产新化合物成为可能。本文是主题为“硅藻独特的碳代谢”的特刊的一部分。

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