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来自巴斯德毕赤酵母的磷脂酰丝氨酸脱羧酶1和2的鉴定。

Identification of phosphatidylserine decarboxylases 1 and 2 from Pichia pastoris.

作者信息

Wriessnegger Tamara, Sunga Anthony Jay, Cregg James M, Daum Guenther

机构信息

Institute of Biochemistry, Graz University of Technology, Graz, Austria.

出版信息

FEMS Yeast Res. 2009 Sep;9(6):911-22. doi: 10.1111/j.1567-1364.2009.00544.x. Epub 2009 Jun 23.

Abstract

Genetic manipulation of lipid biosynthetic enzymes allows modification of cellular membranes. We made use of this strategy and constructed mutants in phospholipid metabolism of Pichia pastoris, which is widely used in biotechnology for expression of heterologous proteins. Here we describe identification of two P. pastoris phosphatidylserine decarboxylases (PSDs) encoded by genes homologous to PSD1 and PSD2 from Saccharomyces cerevisiae. Using P. pastoris psd1Delta and psd2Delta mutants we investigated the contribution of the respective gene products to phosphatidylethanolamine synthesis, membrane composition and cell growth. Deletion of PSD1 caused loss of PSD activity in mitochondria, a severe growth defect on minimal media and depletion of cellular and mitochondrial phosphatidylethanolamine levels. This defect could not be compensated by Psd2p, but by supplementation with ethanolamine, which is the substrate for the cytidine diphosphate (CDP)-ethanolamine pathway, the third route of phosphatidylethanolamine synthesis in yeast. Fatty acid analysis showed selectivity of both Psd1p and Psd2p in vivo for the synthesis of unsaturated phosphatidylethanolamine species. Phosphatidylethanolamine species containing palmitic acid (16:0), however, were preferentially assembled into mitochondria. In summary, this study provides first insight into membrane manipulation of P. pastoris, which may serve as a useful method to modify cell biological properties of this microorganism for biotechnological purposes.

摘要

对脂质生物合成酶进行基因操作可实现细胞膜的修饰。我们利用这一策略,构建了毕赤酵母磷脂代谢的突变体,毕赤酵母在生物技术领域广泛用于异源蛋白的表达。在此,我们描述了对毕赤酵母中由与酿酒酵母PSD1和PSD2同源的基因编码的两种磷脂酰丝氨酸脱羧酶(PSD)的鉴定。利用毕赤酵母psd1Δ和psd2Δ突变体,我们研究了各自基因产物对磷脂酰乙醇胺合成、膜组成和细胞生长的贡献。PSD1的缺失导致线粒体中PSD活性丧失,在基本培养基上出现严重的生长缺陷,以及细胞和线粒体磷脂酰乙醇胺水平的耗尽。这种缺陷不能由Psd2p补偿,但可通过补充乙醇胺来弥补,乙醇胺是胞苷二磷酸(CDP)-乙醇胺途径的底物,是酵母中磷脂酰乙醇胺合成的第三条途径。脂肪酸分析表明,Psd1p和Psd2p在体内对不饱和磷脂酰乙醇胺种类的合成具有选择性。然而,含有棕榈酸(16:0)的磷脂酰乙醇胺种类优先组装到线粒体中。总之,本研究首次深入了解了毕赤酵母的膜操作,这可能是一种有用的方法,可用于为生物技术目的改变这种微生物的细胞生物学特性。

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