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The Effect of Calcium on the Cohesive Strength and Flexural Properties of Low-Methoxyl Pectin Biopolymers

机译:钙对低甲氧基果胶生物聚合物内聚强度和弯曲性能的影响

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摘要

Pectin binds the mesothelial glycocalyx of visceral organs, suggesting its potential role as a mesothelial sealant. To assess the mechanical properties of pectin films, we compared pectin films with a less than 50% degree of methyl esterification (low-methoxyl pectin, LMP) to films with greater than 50% methyl esterification (high-methoxyl pectin, HMP). LMP and HMP polymers were prepared by step-wise dissolution and high-shear mixing. Both LMP and HMP films demonstrated a comparable clear appearance. Fracture mechanics demonstrated that the LMP films had a lower burst strength than HMP films at a variety of calcium concentrations and hydration states. The water content also influenced the extensibility of the LMP films with increased extensibility (probe distance) with an increasing water content. Similar to the burst strength, the extensibility of the LMP films was less than that of HMP films. Flexural properties, demonstrated with the 3-point bend test, showed that the force required to displace the LMP films increased with an increased calcium concentration ( < 0.01). Toughness, here reflecting deformability (ductility), was variable, but increased with an increased calcium concentration. Similarly, titrations of calcium concentrations demonstrated LMP films with a decreased cohesive strength and increased stiffness. We conclude that LMP films, particularly with the addition of calcium up to 10 mM concentrations, demonstrate lower strength and toughness than comparable HMP films. These physical properties suggest that HMP has superior physical properties to LMP for selected biomedical applications.
机译:果胶结合内脏器官的间皮糖萼,表明其作为间皮密封剂的潜在作用。为了评估果胶膜的机械性能,我们将甲基酯化度低于50%的果胶膜(低甲氧基果胶,LMP)与甲基酯化度高于50%的膜(高甲氧基果胶,HMP)进行了比较。 LMP和HMP聚合物是通过逐步溶解和高剪切混合来制备的。 LMP和HMP膜均显示出可比的清晰外观。断裂力学表明,在多种钙浓度和水合状态下,LMP膜的破裂强度低于HMP膜。含水量还随着水含量的增加而增加了延伸性(探针距离),从而影响了LMP膜的延伸性。与破裂强度相似,LMP膜的可延展性小于HMP膜的可延展性。用三点弯曲试验证明的弯曲性能表明,置换LMP膜所需的力随钙浓度的增加而增加(<0.01)。韧性,在这里反映了变形性(延展性),是可变的,但是随着钙浓度的增加而增加。同样,钙浓度的滴定表明LMP膜具有降低的内聚强度和增加的硬度。我们得出的结论是,LMP薄膜(尤其是添加浓度高达10 mM的钙)比同等HMP薄膜具有更低的强度和韧性。这些物理性质表明,对于某些生物医学应用,HMP具有优于LMP的物理性质。

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