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肠膜明串珠菌 B-1355 突变株产生的交替蔗糖酶,表现出表观分子量降低。

Leuconostoc mesenteroides B-1355 Mutants Producing Alternansucrases Exhibiting Decreases in Apparent Molecular Mass.

出版信息

Appl Environ Microbiol. 1997 Feb;63(2):581-6. doi: 10.1128/aem.63.2.581-586.1997.

Abstract

Mutants of Leuconostoc mesenteroides B-1355 exhibiting decreases in the apparent molecular mass of alternansucrase on sodium dodecyl sulfate (SDS)-polyacrylamide gels stained for enzyme activity were isolated after mutagenizing strain R15 with N-methyl-N(prm1)-nitro-N-nitrosoguanidine. Strain R15 was a UV mutant of strain B-1355 which was enriched for production of alternansucrase. All strains produced principal and minor alternansucrase bands on SDS gels when cultures were subjected to SDS-polyacrylamide gel electrophoresis (SDS-PAGE). The patterns of the principal and minor activity bands on our SDS gels did not result from dextran-enzyme complexes, because mutants constitutive for synthesis of glucosyltransferases (GTFs) on sugars other than sucrose produced activity bands after growth in glucose medium that were the same as those produced after growth in sucrose medium. Dextransucrase, which had been inactivated by heating at 45(deg)C, was reactivated when subjected to SDS-PAGE, showing that our SDS-PAGE conditions were reversibly denaturing. Thermal denaturation at 45(deg)C did not involve a dispersal of GTFs into subunits. Densitometry measurements showed a roughly linear relationship between enzyme activity and band intensity over a loading range of 0.2 to 0.8 mU per sample well. We concluded that SDS-PAGE followed by activity staining was a reliable method for estimating numbers and ratios of GTFs produced by Leuconostoc sp. in media containing sucrose.

摘要

经 N-甲基-N(prm1)-硝基-N-亚硝基胍诱变后,从 Leuconostoc mesenteroides B-1355 菌株 R15 中分离出交替蔗糖酶表观分子量降低的突变体。R15 菌株是 B-1355 菌株的 UV 突变体,该突变体富含交替蔗糖酶的产生。当培养物进行 SDS-聚丙烯酰胺凝胶电泳(SDS-PAGE)时,所有菌株在 SDS 凝胶上均产生主要和次要的交替蔗糖酶带。我们 SDS 凝胶上主要和次要活性带的模式不是由葡聚糖-酶复合物引起的,因为在除蔗糖以外的糖上合成葡糖基转移酶(GTFs)的组成型突变体能在葡萄糖培养基中生长后产生与在蔗糖培养基中生长后相同的活性带。在 45°C 加热失活的葡聚糖蔗糖酶在进行 SDS-PAGE 时被重新激活,这表明我们的 SDS-PAGE 条件是可逆变性的。45°C 的热变性不涉及 GTFs 分散成亚基。密度计测量表明,在 0.2 至 0.8 mU/样品孔的加载范围内,酶活性与带强度之间存在大致线性关系。我们得出结论,SDS-PAGE 后进行活性染色是一种可靠的方法,可用于估计 Leuconostoc sp. 在含有蔗糖的培养基中产生的 GTFs 的数量和比例。

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