Department of Industrial and Physical Pharmacy, Purdue University, 575 Stadium Mall Drive, West Lafayette, IN 47907, USA.
Institute of Agrochemistry and Food Technology (IATA-CSIC), C/Agustin Escardino, 7, Paterna, 46980, Valencia, Spain.
Carbohydr Polym. 2018 Nov 15;200:543-551. doi: 10.1016/j.carbpol.2018.08.035. Epub 2018 Aug 10.
The behavior of starch during processing and its performance in products is influenced by the surface energetics/structure of the constituent particles. This work investigates the effect of enzymatically-produced porous maize starch particles on their energetic surface properties using inverse gas chromatography-based surface energy analysis (SEA). Three modified maize starch samples treated with amylase (AM), glucoamylase (AMG) and cyclodextrin-glycosyltransferase (CGT), were used for the study. The dispersive surface energy varied from 36.71 (native) to 43.34 mJ/m (AMG < CGT < AM). Enzyme catalysis resulted in porous starches with a more acidic (AMG) and a more basic (AM) surfaces. CGT exhibited similar acid-base balance as native starch but with higher concentration of active sites on the surface. This is the first study on the surface energy of enzymatically-treated porous starch materials using SEA, revealing significant information regarding the surface interactions that can affect performance of food and pharmaceutical products.
淀粉在加工过程中的行为及其在产品中的性能受到组成颗粒表面能量/结构的影响。本工作使用基于反气相色谱的表面能分析(SEA)研究了酶法生产的多孔玉米淀粉颗粒对其表面能量特性的影响。使用了三种用淀粉酶(AM)、糖化酶(AMG)和环糊精葡萄糖基转移酶(CGT)处理的改性玉米淀粉样品进行研究。分散表面能从 36.71(天然)变化到 43.34 mJ/m(AMG < CGT < AM)。酶催化导致多孔淀粉具有更酸性(AMG)和更碱性(AM)的表面。CGT 表现出与天然淀粉相似的酸碱平衡,但表面上的活性位点浓度更高。这是首次使用 SEA 研究酶处理的多孔淀粉材料的表面能,揭示了有关可能影响食品和制药产品性能的表面相互作用的重要信息。