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首页> 外文期刊>Infection and immunity >Streptococcus mutans dextransucrase: mode of interaction with high-molecular-weight dextran and role in cellular aggregation.
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Streptococcus mutans dextransucrase: mode of interaction with high-molecular-weight dextran and role in cellular aggregation.

机译:变形链球菌右旋糖核酸酶:与高分子量右旋糖酐相互作用的模式以及在细胞聚集中的作用。

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摘要

The interaction between Streptococcus mutans dextransucrase (EC 2.4.1.5) and high-molecular-weight dextran was studied in both the presence and absence of substrate sucrose. Equivalent weight-percent solutions of primer dextrans that differed 200-fold in molecular weight were found to be equally efficient in priming new dextran synthesis. Sodium borohydride reduction of dextran had no effect on its priming ability. These results suggest that dextran synthesis proceeds by addition of glucosyl residues to nonreducing termini of primer dextrans and that several enzyme molecules simultaneously bind to single high-molecular-weight dextran molecules. Kinetic data suggested that dextransucrase contains only one dextran binding site per enzyme molecule. The nature of the commonly observed highly aggregated state of dextransucrase was also studied. Two types of enzyme aggregates were distinguished: (i) oligomeric enzyme aggregates that formed in the absence of dextran and were dissociated by 1 M KCl; and (ii) dextran-induced enzyme aggregates that were stable to 3 M salt. Oligomeric enzyme aggregates were obtained from supernatants of fructose-grown cultures, whereas dextran-induced enzyme aggregates appeared to be present in glucose-grown cultures. The molecular weight of the smallest species of dextran-free detransucrase observed in solutions of 1 M KCl was estimated to be 40,000 by gel column chromatography. Addition of dextran to primer-dependent dextransucrase resulted in formation of complexes that were stable in CsCl density gradients and exhibited a buoyant density of 1.382 g/cm3 as compared with a buoyant density of 1.302 g/cm3 exhibited by dextransucrase. The enzyme-dextran complexes observed in CsCl density gradients contained about 25% dextran. This corresponded to 150 enzyme molecules (molecular weight, 40,000) per dextran molecule (molecular weight, 2 X 10(6)). The implication of these results to the mechanism of sucrose- and dextran-induced aggregation of S. mutans is discussed.
机译:在存在和不存在底物蔗糖的情况下,研究了变形链球菌葡聚糖葡聚糖酶(EC 2.4.1.5)和高分子量葡聚糖之间的相互作用。发现引物葡聚糖的当量重量百分比溶液的分子量相差200倍,在引发新的葡聚糖合成中同样有效。葡聚糖的硼氢化钠还原对其引发能力没有影响。这些结果表明,通过将葡糖基残基添加到引物葡聚糖的非还原末端来进行葡聚糖合成,并且几种酶分子同时结合至单个高分子量葡聚糖分子。动力学数据表明,右旋糖酐酶每个酶分子仅包含一个右旋糖酐结合位点。还研究了通常观察到的右旋糖核酸酶高度聚集状态的性质。区分了两种类型的酶聚集体:(i)在不存在右旋糖酐的情况下形成并由1 M KCl解离的寡聚酶聚集体; (ii)对3 M盐稳定的葡聚糖诱导的酶聚集体。低聚酶聚集体是从果糖生长的培养物的上清液中获得的,而葡聚糖诱导的酶聚集体似乎存在于葡萄糖生长的培养物中。通过凝胶柱色谱法,在1 M KCl溶液中观察到的最小量的无右旋糖酐的反转录酶的分子量估计为40,000。将葡聚糖添加到引物依赖性葡聚糖酶中导致形成复合物,所述复合物在CsCl密度梯度中稳定并且显示出浮力密度为1.382g / cm 3,而葡聚糖转移酶显示出浮力密度为1.302g / cm 3。在CsCl密度梯度中观察到的酶-葡聚糖复合物包含约25%的葡聚糖。这对应于每个葡聚糖分子(分子量,2×10(6))的150个酶分子(分子量,40,000)。讨论了这些结果对蔗糖和葡聚糖诱导的变形链球菌聚集机制的影响。

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