首页> 外文期刊>Analytical and Bioanalytical Chemistry >Molecular size and mass distributions of native starches using complementary separation methods: Asymmetrical Flow Field Flow Fractionation (A4F) and Hydrodynamic and Size Exclusion Chromatography (HDC-SEC)
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Molecular size and mass distributions of native starches using complementary separation methods: Asymmetrical Flow Field Flow Fractionation (A4F) and Hydrodynamic and Size Exclusion Chromatography (HDC-SEC)

机译:使用互补分离方法的天然淀粉的分子大小和质量分布:不对称流场流动分馏(A4F)和流体动力学和尺寸排阻色谱(HDC-SEC)

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摘要

Starch consists of a mixture of two α-glucans built mainly upon α-(1,4) linkages: amylose, an essentially linear polymer, and amylopectin, a branched polymer containing 5–6% of α-(1,6) linkages. The aim of the present work was to analyze the structural properties of native starches displaying different amylose-to-amylopectin ratios and arising from different botanical sources, using asymmetrical flow field flow fractionation (A4F) and a combination of hydrodynamic and size-exclusion chromatography (HDC-SEC) coupled with multiangle laser light scattering, online quasi-elastic light scattering, and differential refractive index techniques. The procedure, based upon dimethyl sulfoxide pretreatment and then solubilization in water, generates a representative injected sample without altering the initial degree of polymerization. The amylopectin weight-average molar masses and radii of gyration were around 1.0 × 108–4.8 × 108 g mol-1 and 110–267 nm, respectively. For each starch sample, the hydrodynamic radius (R H) distributions and the molar mass distributions obtained from the two fractionation systems coupled with light scattering techniques were analyzed. The size determination scales were extended by means of R H calibration curves. HDC-SEC and A4F data could be matched. However, A4F enabled a better separation of amylopectins and therefore an enhanced structural characterization of the starches. The two advantages of this experimental approach are (1) it can directly obtain distributions as a function of both molar mass and size, while taking account of sample heterogeneity, and (2) it is possible to compare the results obtained using the different techniques through the direct application of R H distributions.
机译:淀粉由两种主要基于α-(1,4)键构建的α-葡聚糖的混合物组成:直链淀粉(一种基本为线性的聚合物)和支链淀粉(一种支链聚合物,其含有5-6%的α-(1,6)链接)。本工作的目的是使用不对称流场流动分馏(A4F)以及流体动力学和尺寸排阻色谱法( HDC-SEC)与多角度激光散射,在线准弹性光散射和微分折射率技术相结合。该方法基于二甲基亚砜的预处理,然后在水中溶解,可生成代表性的进样样品,而不会改变初始聚合度。支链淀粉的重均摩尔质量和回转半径约为1.0×10 8 –4.8×10 8 g mol -1 和110–分别为267 nm。对于每个淀粉样品,分析了两个分馏系统结合光散射技术获得的流体动力学半径(R H )分布和摩尔质量分布。通过R H 校准曲线扩展了尺寸确定尺度。 HDC-SEC和A4F数据可以匹配。但是,A4F能够更好地分离支链淀粉,因此增强了淀粉的结构特征。这种实验方法的两个优点是:(1)在考虑样品异质性的同时,可以直接获得摩尔质量和粒径的函数分布;(2)可以通过以下方法比较使用不同技术获得的结果: R H 分布的直接应用。

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