Quevedo Maria, Karbstein Heike P, Emin M Azad
Institute of Process Engineering in Life Sciences, Chair of Food Process Engineering, Karlsruhe Institute of Technology, 76131 Karlsruhe, Germany.
Polymers (Basel). 2020 Sep 20;12(9):2145. doi: 10.3390/polym12092145.
In this study, the influence of defined extrusion-like treatment conditions on the denaturation behavior and kinetics of single- and multi-component protein model systems at a protein concentration of 70% () was investigated. α-Lactalbumin (αLA) and β-Lactoglobulin (βLG), and whey protein isolate (WPI) were selected as single- and multi-component protein model systems, respectively. To apply defined extrusion-like conditions, treatment temperatures in the range of 60 and 100 °C, shear rates from 0.06 to 50 s⁻, and treatment times up to 90 s were chosen. While an aggregation onset temperature was determined at approximately 73 °C for WPI systems at a shear rate of 0.06 s⁻, two significantly different onset temperatures were determined when the shear rate was increased to 25 and 50 s⁻. These two different onset temperatures could be related to the main fractions present in whey protein (βLG and αLA), suggesting shear-induced phase separation. Application of additional mechanical treatment resulted in an increase in reaction rates for all the investigated systems. Denaturation was found to follow 2.262 and 1.865 order kinetics for αLA and WPI, respectively. The reaction order of WPI might have resulted from a combination of a lower reaction order in the unsheared system (i.e., fractional first order) and higher reaction order for sheared systems, probably due to phase separation, leading to isolated behavior of each fraction at the local level (i.e., fractional second order).
在本研究中,研究了在蛋白质浓度为70%()的情况下,特定挤压样处理条件对单组分和多组分蛋白质模型体系变性行为及动力学的影响。分别选择α-乳白蛋白(αLA)和β-乳球蛋白(βLG)以及乳清蛋白分离物(WPI)作为单组分和多组分蛋白质模型体系。为了应用特定的挤压样条件,选择了60至100°C的处理温度、0.06至50 s⁻的剪切速率以及长达90 s的处理时间。对于WPI体系,在剪切速率为0.06 s⁻时,聚集起始温度约为73°C,而当剪切速率增加到25和50 s⁻时,确定了两个显著不同的起始温度。这两个不同的起始温度可能与乳清蛋白中的主要成分(βLG和αLA)有关,表明剪切诱导相分离。额外机械处理的应用导致所有研究体系的反应速率增加。发现αLA和WPI的变性分别遵循2.262级和1.865级动力学。WPI的反应级数可能是由于未剪切体系中较低的反应级数(即分数一级)和剪切体系中较高的反应级数共同作用的结果,这可能是由于相分离,导致各组分在局部水平上表现出孤立行为(即分数二级)。