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嗜腺嘌呤阿苏酵母的遗传转化及生物技术应用

Genetic transformation and biotechnological application of the yeast Arxula adeninivorans.

作者信息

Wartmann T, Kunze G

机构信息

Institut für Pflanzengenetik und Kulturpflanzenforschung, Gatersleben, Germany.

出版信息

Appl Microbiol Biotechnol. 2000 Nov;54(5):619-24. doi: 10.1007/s002530000444.

Abstract

The relatively unknown, non-pathogenic, dimorphic, haploid, ascomycetous yeast Arxula adeninivorans exhibits some unusual properties which are of biotechnological interest. The yeast is able to assimilate and ferment many compounds as sole source of carbon and/or nitrogen, it utilises n-alkanes and degrades starch efficiently. A. adeninivorans features such as thermo- and haloresistance as well as the yeast's uncommon growth and secretion behaviour should be especially emphasised. In media containing up to 20% NaCl, A. adeninivorans is able to grow at cultivation temperatures up to 48 degrees C. Additionally, the dimorphism of the yeast is unusual. Arxula grows at up temperatures of up to 42 degrees C as budding cells, which turn into mycelia at higher temperatures. This environmentally conditioned dimorphism is reversible and budding is reestablished when the cultivation temperature is decreased below 42 degrees C. Alteration of morphology correlates with changes in secretion behaviour. Mycelium cultures accumulate two-fold higher protein concentrations and contain two- to five-fold higher glucoamylase and invertase activities in the medium than budding cells. Based on these unusual properties, Arxula adeninivorans is used for heterologous gene expression and as a gene donor to construct more suitable yeasts for biotechnology. For example the Arxula glucoamylase gene was successfully expressed in Saccharomyces cerevisiae and Kluyveromyces lactis. Both transformed yeasts are able to assimilate and ferment starch as carbon source. A transformation system is used for heterologous gene expression which is based on integration of linearised DNA fragments in two to ten copies, e.g. into the 25S rDNA of A. adeninivorans by homologous recombination. The obtained transformants are mitotically stable. The expression of the lacZ gene from E. coli as well as the XylE gene from Pseudomonas putida indicates the suitability of A. adeninivorans as host for heterologous gene expression.

摘要

相对不为人知的非致病性二态单倍体子囊酵母阿氏丝孢酵母(Arxula adeninivorans)具有一些不同寻常的特性,这些特性在生物技术方面具有重要意义。这种酵母能够将许多化合物作为唯一的碳源和/或氮源进行同化和发酵,它可以利用正构烷烃并高效降解淀粉。阿氏丝孢酵母的一些特性,如耐热性和耐盐性,以及该酵母不寻常的生长和分泌行为尤其值得强调。在含有高达20%氯化钠的培养基中,阿氏丝孢酵母能够在高达48摄氏度的培养温度下生长。此外,这种酵母的二态性也很不寻常。阿氏丝孢酵母在高达42摄氏度的温度下以芽殖细胞形式生长,在更高温度下则转变为菌丝体。这种受环境条件影响的二态性是可逆的,当培养温度降至42摄氏度以下时,又会重新恢复芽殖。形态的改变与分泌行为的变化相关。与芽殖细胞相比,菌丝体培养物积累的蛋白质浓度高出两倍,培养基中的糖化酶和转化酶活性高出两到五倍。基于这些不同寻常的特性,阿氏丝孢酵母被用于异源基因表达,并作为基因供体来构建更适合生物技术应用的酵母。例如,阿氏丝孢酵母的糖化酶基因已在酿酒酵母(Saccharomyces cerevisiae)和乳酸克鲁维酵母(Kluyveromyces lactis)中成功表达。两种转化后的酵母都能够将淀粉作为碳源进行同化和发酵。一种用于异源基因表达的转化系统,是基于将线性化的DNA片段以两到十个拷贝整合,例如通过同源重组整合到阿氏丝孢酵母的25S rDNA中。获得的转化体在有丝分裂过程中是稳定的。大肠杆菌(E. coli)的lacZ基因以及恶臭假单胞菌(Pseudomonas putida)的XylE基因的表达表明阿氏丝孢酵母适合作为异源基因表达的宿主。

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