首页> 外文期刊>Applied and Environmental Microbiology >Gene Cloning and Functional Characterization by Heterologous Expression of the Fructosyltransferase of Aspergillus sydowi IAM 2544
【24h】

Gene Cloning and Functional Characterization by Heterologous Expression of the Fructosyltransferase of Aspergillus sydowi IAM 2544

机译:异曲霉IAM 2544果糖基转移酶的异源表达基因克隆和功能鉴定

获取原文
           

摘要

We have purified a fructosyltransferase from conidia of the inulin-producing fungus Aspergillus sydowi IAM 2544 and obtained peptide sequences from proteolytic fragments of the protein. With degenerated primers, we amplified a PCR fragment that was used to screen a cDNA library. The fructosyltransferase gene fromAspergillus sydowi (EMBL accession no. AJ289046) is expressed in conidia, while no expression could be detected in mycelia by Northern blot analysis of mycelial RNA. The gene encodes a protein with a calculated molecular mass of 75 kDa that is different from all fructosyltransferases in the databases. The only homology that could be detected was to the invertase of Aspergillus niger (EMBL accession no. L06844). The gene was functionally expressed inEscherichia coli, yeast, and potato plants. With protein extracts from transgenic bacteria and yeast, fructooligosaccharides could be produced in vitro. In transgenic potato plants, inulin molecules of up to 40 hexose units were synthesized in vivo. While in vitro experiments with protein extracts from conidia ofAspergillus sydowi yielded the same pattern of oligosaccharides as extracts from transformed bacteria and yeast, in vivo inulin synthesis with fungal conidia leads to the production of a high-molecular-weight polymer.
机译:我们已经从产菊粉的真菌合子曲霉IAM 2544的分生孢子中纯化了果糖基转移酶,并从该蛋白的蛋白水解片段中获得了肽序列。使用简并引物,我们扩增了用于筛选cDNA文库的PCR片段。来自子曲霉的果糖基转移酶基因(EMBL登录号AJ289046)在分生孢子中表达,而通过菌丝体RNA的Northern印迹分析在菌丝体中未检测到表达。该基因编码一种蛋白质,其分子量为75 kDa,与数据库中的所有果糖基转移酶不同。唯一可以检测到的同源性是黑曲霉的转化酶(EMBL登录号L06844)。该基因在大肠杆菌,酵母和马铃薯植物中功能表达。利用转基因细菌和酵母的蛋白质提取物,可以在体外产生低聚果糖。在转基因马铃薯植物中,体内合成了多达40个己糖单位的菊粉分子。尽管使用来自syperwis sydowi分生孢子的蛋白质提取物的体外实验产生的寡糖图案与来自转化细菌和酵母的提取物相同的寡糖模式,但利用真菌分生孢子的体内菊粉合成却导致了高分子量聚合物的产生。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号