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疏水改性淀粉的机械降解与构象变化

Mechanical degradation and changes in conformation of hydrophobically modified starch.

作者信息

Nilsson Lars, Leeman Mats, Wahlund Karl-Gustav, Bergenståhl Björn

机构信息

Division of Food Technology and Division of Technical Analytical Chemistry, Centre for Chemistry and Chemical Engineering, Lund University, P.O. Box 124, S-221 00 Lund, Sweden.

出版信息

Biomacromolecules. 2006 Sep;7(9):2671-9. doi: 10.1021/bm060367h.

Abstract

In this paper, we study the mechanical degradation and changes in conformation of a branched ultrahigh molar mass biomacromolecule, hydrophobically modified starch, as caused by high-pressure homogenization. The characterization was performed with asymmetrical flow field-flow fractionation (AsFlFFF) with multiangle light scattering (MALS) and refractive index detection. The starch which had been chemically modified with octenyl succinate anhydride (OSA) proved to be very large and polydisperse. Upon high-pressure homogenization, the molar mass and rms radius (r(rms)) decreased, and the extent of these changes was related to the turbulent flow conditions during homogenization. The treatment also induced an increase and scaling with size in the apparent density of the macromolecules. To further study the changes in conformation, it was necessary to calculate the hydrodynamic radii (r(h)). This can be determined numerically from the elution times in the analysis and the flow conditions in the AsFlFFF channel. The results showed that the treatment can cause a dramatic decrease in the quotient between r(rms) and r(h), suggesting major conformational changes. These results together could be interpreted as degradation and "crumpling" of the macromolecule, which would give a decrease in r(rms) and an increase in apparent density, together with a "fraying" of more outer parts of the macromolecule, which could give rise to the increase in r(h).

摘要

在本文中,我们研究了高压均质化导致的支链超高分子量生物大分子——疏水改性淀粉的机械降解和构象变化。采用不对称流场流分级法(AsFlFFF)结合多角度光散射(MALS)和折射率检测进行表征。经琥珀酸酐辛烯酯(OSA)化学改性的淀粉被证明分子尺寸非常大且多分散。高压均质化后,摩尔质量和均方根半径(r(rms))减小,且这些变化的程度与均质化过程中的湍流条件有关。该处理还导致大分子的表观密度随尺寸增加并呈比例变化。为了进一步研究构象变化,有必要计算流体动力学半径(r(h))。这可以根据分析中的洗脱时间和AsFlFFF通道中的流动条件通过数值计算确定。结果表明,该处理可导致r(rms)与r(h)的比值显著降低,表明构象发生了重大变化。这些结果综合起来可以解释为大分子的降解和“皱缩”,这会导致r(rms)减小和表观密度增加,同时大分子更外围部分的“磨损”会导致r(h)增加。

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