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A tethering mechanism for length control in a processive carbohydrate polymerization

机译:进行性碳水化合物聚合反应中长度控制的束缚机制

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Carbohydrate polymers are the most abundant organic substances on earth. Their degrees of polymerization range from tens to thousands of units, yet polymerases generate the relevant lengths without the aid of a template. To gain insight into template-independent length control, we investigated how the mycobacterial galactofuranosyl-transferase GlfT2 mediates formation of the galactan, a polymer of galactofuranose residues that is an integral part of the cell wall. We show that isolated recombinant GlfT2 can catalyze the synthesis of polymers with degrees of polymerization that are commensurate with values observed in mycobacteria, indicating that length control by GlfT2 is intrinsic. Investigations using synthetic substrates reveal that GlfT2 is processive. The data indicate that GlfT2 controls length by using a substrate tether, which is distal from the site of elongation. The strength of interaction of that tether with the polymerase influences the length of the resultant polymer. Thus, our data identify a mechanism for length control by a template-independent polymerase.
机译:碳水化合物聚合物是地球上最丰富的有机物质。它们的聚合度范围从数十到数千个单位,但是聚合酶无需模板即可产生相关的长度。为了深入了解独立于模板的长度控制,我们研究了分枝杆菌半乳糖呋喃糖基转移酶GlfT2如何介导半乳糖聚糖(半乳糖呋喃糖残基的聚合物,它是细胞壁的组成部分)的形成。我们表明,分离的重组GlfT2可以催化聚合度与分枝杆菌中观察到的数值相当的聚合物的合成,表明通过GlfT2进行长度控制是内在的。使用合成底物的研究表明,GlfT2具有过程性。数据表明,GlfT2通过使用距离延伸位点远的底物系链来控制长度。系链与聚合酶相互作用的强度会影响所得聚合物的长度。因此,我们的数据确定了独立于模板的聚合酶进行长度控制的机制。

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