首页> 美国卫生研究院文献>Plant Physiology >The Mechanism of Synthesis of a Mixed-Linkage (1→3)(1→4)β-d-Glucan in Maize. Evidence for Multiple Sites of Glucosyl Transfer in the Synthase Complex
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The Mechanism of Synthesis of a Mixed-Linkage (1→3)(1→4)β-d-Glucan in Maize. Evidence for Multiple Sites of Glucosyl Transfer in the Synthase Complex

机译:玉米中(1→3)(1→4)β-d-葡聚糖混合链的合成机理合酶复合物中葡萄糖基转移的多个位点的证据

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摘要

We examined the mechanism of synthesis in vitro of (1→3),(1→4)β-d-glucan (β-glucan), a growth-specific cell wall polysaccharide found in grasses and cereals. β-Glucan is composed primarily of cellotriosyl and cellotetraosyl units linked by single (1→3)β-linkages. The ratio of cellotriosyl and cellotetraosyl units in the native polymer is strictly controlled at between 2 and 3 in all grasses, whereas the ratios of these units in β-glucan formed in vitro vary from 1.5 with 5 μm UDP-glucose (Glc) to over 11 with 30 mm substrate. These results support a model in which three sites of glycosyl transfer occur within the synthase complex to produce the cellobiosyl-(1→3)-d-glucosyl units. We propose that failure to fill one of the sites results in the iterative addition of one or more cellobiosyl units to produce the longer cellodextrin units in the polymer. Variations in the UDP-Glc concentration in excised maize (Zea mays) coleoptiles did not result in wide variations in the ratios of cellotriosyl and cellotetraosyl units in β-glucan synthesized in vivo, indicating that other factors control delivery of UDP-Glc to the synthase. In maize sucrose synthase is enriched in Golgi membranes and plasma membranes and may be involved in the control of substrate delivery to β-glucan synthase and cellulose synthase.
机译:我们检查了(1→3),(1→4)β-d-葡聚糖(β-葡聚糖)的体外合成机制,这是一种在草和谷物中发现的生长特异性细胞壁多糖。 β-葡聚糖主要由纤维单糖基和纤维四糖基单元(通过单个(1→3)β-键连接)组成。在所有草中,天然聚合物中纤维二糖基和纤维四糖基的比例均严格控制在2至3之间,而体外形成的β-葡聚糖中这些单元的比例从5μmUDP-葡萄糖(Glc)的1.5变化到超过11与30毫米基板。这些结果支持了其中在合成酶复合物中发生糖基转移的三个位点以产生纤维二糖基-(1→3)-d-葡萄糖基单元的模型。我们建议不能填充其中一个位点导致迭代地添加一个或多个纤维二糖基单元以在聚合物中产生更长的纤维糊精单元。切除的玉米(玉米)胚芽鞘中UDP-Glc浓度的变化不会导致体内合成的β-葡聚糖中纤维三糖基和纤维四糖基单元的比例发生较大变化,表明其他因素控制着UDP-Glc向合酶的传递。在玉米中,蔗糖合酶富含高尔基膜和质膜,并且可能参与底物向β-葡聚糖合酶和纤维素合酶的递送控制。

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