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Structural Changes and Dynamic Rheological Properties of Sarcoplasmic Proteins Subjected to pH-Shift Method

机译:pH变换法检测肌浆蛋白的结构变化和动态流变特性

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Structural changes and dynamic rheological properties of sarcoplasmic proteins from striped catfish (Pangasius hypophthalmus) treated by various pH-shift processes were investigated. Isoelectric precipitation of acid-extracted sarcoplasmic proteins led to the lowest solubility in water. Sarcoplasmic proteins were unfolded after extremely acidic and alkaline extraction, exposing tryptophan and aliphatic residues. The α-helical structure was converted to β-sheet following acidic extraction, whereas alkaline treatment did not disturb the α-helical structure of sarcoplasmic proteins. Disulfide formation, hydrogen bonding via tyrosine residues, and hydrophobic interactions occurred under extreme pH extraction. Acidic extraction induced denaturation and aggregation of sarcoplasmic proteins to a greater extent than did alkaline treatment. Hydrophobic interactions via aliphatic and aromatic residues were formed during isoelectric precipitation. Sarcoplasmic proteins were partially refolded after isoelectric precipitation followed by neutralization. Sarcoplasmic proteins prepared from an alkaline pH-shift process readily aggregated to form a gel at 45.10 °C, whereas higher thermal denaturation temperatures (>80 °C) and gel points (~78 °C) were observed in acid-treated sarcoplasmic proteins. The pH condition used for extraction, precipitation, and neutralization greatly affected structural changes of sarcoplasmic proteins, leading to different thermal and dynamic rheological properties.
机译:研究了通过各种pH值变化过程处理的条纹striped鱼(Pangasius hypophthalmus)的肌浆蛋白的结构变化和动态流变特性。酸提取的肌浆蛋白的等电沉淀导致在水中的溶解度最低。在极端的酸性和碱性条件下提取后,肌浆蛋白会展开,从而暴露出色氨酸和脂肪族残基。酸性提取后,α-螺旋结构转变为β-折叠,而碱处理不会干扰肌浆蛋白的α-螺旋结构。在极端的pH萃取条件下,会发生二硫化物的形成,通过酪氨酸残基的氢键结合以及疏水性相互作用。与碱性处理相比,酸性提取可更大程度地诱导肌浆蛋白的变性和聚集。在等电沉淀过程中,通过脂肪族和芳香族残基形成疏水相互作用。肌浆蛋白在等电沉淀后被部分折叠,然后中和。通过碱性pH值变化过程制备的肌浆蛋白在45.10°C时容易聚集形成凝胶,而在酸处理的肌浆蛋白中观察到较高的热变性温度(> 80°C)和凝胶点(〜78°C)。用于提取,沉淀和中和的pH条件极大地影响了肌浆蛋白的结构变化,从而导致不同的热流变特性和动态流变特性。

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