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A Kinetic Model for Chain Length Modulation of Streptococcus pneumoniae Cellubiuronan Capsular Polysaccharide by Nucleotide Sugar Donor Concentrations

机译:链球菌链长调节的动力学模型 核苷酸糖对肺炎肺炎单胞菌素荚膜多糖的影响 供体浓度

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摘要

The chain length of Streptococcus pneumoniae type 3 capsular polysaccharide (cellubiuronic acid) is tightly regulated by the cellubiuronic acid synthase through an assembly process involving a catalytic motif that is potentially conserved over a wide range of related processive β-glucan synthases. Cellubiuronic acid is initiated on a lipid and is composed of alternating β-1,3-Glc and β-1,4-glucuronic acid (GlcUA) linkages. The entire assembly process is carried out by a polypeptide synthase thought to contain a single active site, suggesting that the donor specificity is controlled by the terminal nonreducing sugar in the acceptor subsite. Shortly after initiation, the synthase undergoes an allosteric transition accompanied by the tight binding of the nascent chain via its nonreducing oligosaccharide terminal segment to the carbohydrate acceptor recognition site. The chain length of polysaccharide assembled by recombinant synthase in Escherichia coli membranes was determined by an ejection mechanism that appeared to be a reversal of the allosteric transition of the synthase from the transitory to the fully processive state. The rates of both ejection and transition were shown to be highly sensitive to the concentration of UDP-GlcUA. As the concentration of UDP-GlcUA was increased, both the rate of synthesis and the processive turnover time increased. The product of the processive turnover time and the rate of synthesis predicted a marked increase in polysaccharide chain size (from 50 to 1150 kDa) over a relatively narrow concentration range of 1–11.5 μm UDP-GlcUA. The kinetic model chain length predictions were in close agreement with chemically determined sizes of polysaccharides synthesized at the same UDP-sugar concentrations. The model indicates that translocation occurs following the addition of GlcUA to the chain terminus, whereas UDP-Glc drives chain termination when inadequate levels of UDP-GlcUA are present. In sum, type 3 synthase appears to modulate polysaccharide chain length by functioning as a concentration-dependent kinetic timing device.
机译:肺炎链球菌3型荚膜多糖(纤维二糖醛酸)的链长通过组装过程被纤维二糖醛酸合酶严格调节,该组装过程涉及催化基序,该基序在许多相关的进行性β-葡聚糖合酶上可能是保守的。纤维二糖醛酸是由脂质引发的,由交替的β-1,3-Glc和β-1,4-葡萄糖醛酸(GlcUA)键组成。整个组装过程由认为包含单个活性位点的多肽合酶进行,这表明供体特异性受受体亚位点的末端非还原糖控制。起始后不久,合酶经历变构转变,伴随着新生链通过其非还原性寡糖末端片段与碳水化合物受体识别位点紧密结合。重组合成酶在大肠杆菌膜中组装的多糖的链长由喷射机制确定,该机制似乎是合成酶从暂时状态到完全加工状态的变构转变的逆转。排出和转变的速率均显示出对UDP-GlcUA的浓度高度敏感。作为 UDP-GlcUA的浓度增加,合成速率和 进行性周转时间增加。进行性周转的乘积 时间和合成速率预测多糖的显着增加 相对窄的浓度范围内的链大小(50至1150 kDa) 1–11.5μmUDP-GlcUA。动力学模型链长 预测与化学确定的 以相同的UDP-糖浓度合成的多糖。该模型 表示在向GlcUA添加GlcUA之后发生易位 链末端,而当不足时,UDP-Glc驱动链终止 存在UDP-GlcUA级别。总而言之,3型合酶似乎可以调节 多糖链长,起浓度依赖性作用 动力计时装置。

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