R&D Group, ASPEX Division, Research Center, Asahi Glass Co., Ltd., 1150 Hazawa-cho, Kanagawa-ku, Yokohama, 221-8755, Japan.
Appl Microbiol Biotechnol. 2010 Mar;86(2):403-17. doi: 10.1007/s00253-010-2447-0. Epub 2010 Feb 6.
Yeasts combine the ease of genetic manipulation and fermentation of a microorganism with the capability to secrete and modify foreign proteins according to a general eukaryotic scheme. Their rapid growth, microbiological safety, and high-density fermentation in simplified medium have a high impact particularly in the large-scale industrial production of foreign proteins, where secretory expression is important for simplifying the downstream protein purification process. However, secretory expression of heterologous proteins in yeast is often subject to several bottlenecks that limit yield. Thus, many studies on yeast secretion systems have focused on the engineering of the fermentation process, vector systems, and host strains. Recently, strain engineering by genetic modification has been the most useful and effective method for overcoming the drawbacks in yeast secretion pathways. Such an approach is now being promoted strongly by current post-genomic technology and system biology tools. However, engineering of the yeast secretion system is complicated by the involvement of many cross-reacting factors. Tight interdependence of each of these factors makes genetic modification difficult. This indicates the necessity of developing a novel systematic modification strategy for genetic engineering of the yeast secretion system. This mini-review focuses on recent strategies and their advantages for systematic engineering of yeast strains for effective protein secretion.
酵母兼具微生物遗传操作简单和发酵方便的特点,能够根据真核生物的一般方案分泌和修饰外源蛋白。它们生长迅速、微生物安全性高,并且能够在简化的培养基中进行高密度发酵,这对大规模工业生产外源蛋白具有重大影响,因为分泌表达对于简化下游蛋白纯化过程非常重要。然而,外源蛋白在酵母中的分泌表达常常受到几个限制产量的瓶颈的影响。因此,许多关于酵母分泌系统的研究都集中在发酵工艺、载体系统和宿主菌株的工程改造上。最近,通过遗传修饰进行菌株工程改造已成为克服酵母分泌途径缺陷的最有用和最有效的方法。这种方法现在正受到当前基因组后技术和系统生物学工具的大力推动。然而,由于涉及许多相互作用的因素,酵母分泌系统的工程改造变得复杂。这些因素之间的紧密相互依存关系使得遗传修饰变得困难。这表明有必要开发一种新的系统修饰策略,用于酵母分泌系统的遗传工程改造。这篇综述聚焦于最近的策略及其优势,这些策略用于对酵母菌株进行系统工程改造,以实现有效的蛋白分泌。