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首页> 外文期刊>International Journal of Biological Macromolecules: Structure, Function and Interactions >GELATION OF FRACTIONATED CANINE SUBMAXILLARY MUCIN IN A CHAOTROPIC SOLVENT
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GELATION OF FRACTIONATED CANINE SUBMAXILLARY MUCIN IN A CHAOTROPIC SOLVENT

机译:分液的犬次颌粘胶在离液溶剂中的凝胶化

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摘要

Rheological measurements have been performed on three molecular weight fractions of purified canine submaxillary mucin (CSM) dissolved in the chaotropic solvent 6 M guanidine hydrochloride (GdnHCl). Solutions of the lower molecular weight fractions are viscoelastic sols, and their dynamic moduli can be scaled with respect to molecular weight and concentration according to linear viscoelasticity theory. In contrast, preparations of the highest molecular weight fraction form viscoelastic gels that exhibit an equilibrium shear modulus, G(e)', which scales with mucin concentration as G(e)' similar to c(3). Amino acid and carbohydrate analyses of all three fractions are similar; thus, the differences in rheological behavior are attributed to molecular weight differences, which affect the degree of coil overlap in solutions of a given concentration. These observations demonstrate conclusively that mucin glycoproteins of high molecular weight form gels under conditions in which the mucin chains physically interpenetrate, even when non-covalent intermolecular interactions are extensively disrupted. A comparison of these results with previous studies of purified submaxillary and tracheobronchial mucins indicates that the carbohydrate side-chain length, in addition to molecular weight, is an important determinant of the observed elastic response and the ability to form physical gels. [References: 27]
机译:对溶解在离液溶剂6 M盐酸胍(GdnHCl)中的纯化的犬上颌下黏液(CSM)的三个分子量级分进行了流变学测量。较低分子量级分的溶液是粘弹性溶胶,根据线性粘弹性理论,它们的动态模量可以相对于分子量和浓度进行缩放。相反,具有最高分子量分数的制剂会形成粘弹性凝胶,该凝胶表现出平衡剪切模量G(e)',与粘蛋白浓度成比例的G(e)'与c(3)相似。这三个部分的氨基酸和碳水化合物分析均相似。因此,流变行为的差异归因于分子量差异,分子量差异影响了给定浓度溶液中线圈的重叠程度。这些观察结果证明,即使在非共价分子间相互作用被广泛破坏的情况下,高分子量粘蛋白糖蛋白在粘蛋白链物理渗透的条件下形成凝胶。将这些结果与先前对纯化的上颌下和气管支气管粘蛋白的研究结果进行比较后发现,除分子量外,碳水化合物的侧链长度是观察到的弹性反应和形成物理凝胶的能力的重要决定因素。 [参考:27]

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