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嗜热栖热硫化叶菌中β-淀粉酶产生的调控与基因增强

Regulation and genetic enhancement of beta-amylase production in Clostridium thermosulfurogenes.

作者信息

Hyun H H, Zeikus J G

出版信息

J Bacteriol. 1985 Dec;164(3):1162-70. doi: 10.1128/jb.164.3.1162-1170.1985.

Abstract

We studied the general mechanism for regulation of beta-amylase synthesis in Clostridium thermosulfurogenes. beta-Amylase was expressed at high levels only when the organism was grown on maltose or other carbohydrates containing maltose units. Three kinds of mutants altered in beta-amylase production were isolated by using nitrosoguanidine treatment, enrichment on 2-deoxyglucose, and selection of colonies with large clear zones on iodine-stained starch-glucose agar plates. beta-Amylase was produced only when maltose was added to cells growing on sucrose in wild-type and catabolite repression-resistant mutant strains, but the differential rate of enzyme synthesis in constitutive mutants was constant regardless of the presence of maltose. In carbon-limited chemostats of wild-type and catabolite repression-resistant mutant stains, beta-amylase was expressed on maltose but not on glucose or sucrose. beta-Amylase synthesis was immediately repressed by the addition of glucose. Therefore, we concluded that beta-amylase synthesis in C. thermosulfurogenes was inducible and subject to catabolite repression. The addition of cAMP did not eliminate the repressive effect of glucose. The mutants were generally characterized in terms of beta-amylase production, growth properties, fermentation product formation, and alterations in glucose isomerase and glucoamylase activities. A hyperproductive mutant produced eightfold more beta-amylase on starch medium than the wild type and more rapidly fermented starch to ethanol.

摘要

我们研究了嗜热栖热放线菌中β-淀粉酶合成的调控机制。仅当该生物体在麦芽糖或其他含麦芽糖单元的碳水化合物上生长时,β-淀粉酶才会高水平表达。通过使用亚硝基胍处理、在2-脱氧葡萄糖上富集以及在碘染色的淀粉-葡萄糖琼脂平板上选择具有大透明圈的菌落,分离出了三种β-淀粉酶产生发生改变的突变体。在野生型和抗分解代谢物阻遏突变体菌株中,仅当向在蔗糖上生长的细胞中添加麦芽糖时才产生β-淀粉酶,但组成型突变体中酶合成的差异速率是恒定的,与麦芽糖的存在无关。在野生型和抗分解代谢物阻遏突变体菌株的碳限制恒化器中,β-淀粉酶在麦芽糖上表达,但在葡萄糖或蔗糖上不表达。添加葡萄糖可立即抑制β-淀粉酶的合成。因此,我们得出结论,嗜热栖热放线菌中β-淀粉酶的合成是可诱导的,并受分解代谢物阻遏。添加cAMP并不能消除葡萄糖的抑制作用。这些突变体通常根据β-淀粉酶产生、生长特性、发酵产物形成以及葡萄糖异构酶和葡糖淀粉酶活性的改变来表征。一个高产突变体在淀粉培养基上产生的β-淀粉酶比野生型多八倍,并且能更快地将淀粉发酵成乙醇。

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