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双频狭缝式超声对高浓度水解羽毛粉酶解效果的影响:水解产物的生物学活性和结构特征。

Effects of dual-frequency slit ultrasound on the enzymolysis of high-concentration hydrolyzed feather meal: Biological activities and structural characteristics of hydrolysates.

机构信息

School of Food and Biological Engineering, Jiangsu University, 301 Xuefu Road, Zhenjiang, Jiangsu 212013, China.

School of Food and Biological Engineering, Jiangsu University, 301 Xuefu Road, Zhenjiang, Jiangsu 212013, China; Institute of Food Physical Processing, Jiangsu University, 301 Xuefu Road, Jingkou District, Zhenjiang, Jiangsu 212013, China.

出版信息

Ultrason Sonochem. 2022 Sep;89:106135. doi: 10.1016/j.ultsonch.2022.106135. Epub 2022 Aug 24.

Abstract

Ultrasound-assisted enzymolysis has been applied to improve conventional enzymolysis, while there are rare reports on the application of ultrasound to high-concentration feather protein enzymolysis. Therefore, the feasibility of dual-frequency slit ultrasound (DFSU) for enzymolysis of high-concentration hydrolyzed feather meal (HFM), as well as the biological activities and structural characteristics of hydrolysates were investigated. The single-factor test was used to optimize the ultrasonic processing parameters: substrate concentration, frequency mode, intermittent ratio, power density, and time. The results showed that protein recovery rate and conversion rate increased by 6.08% and 18.63% under the optimal conditions (200 g/L, 28/80 kHz, 5:2 s/s, 600 W/L, and 3 h) compared with conventional enzymolysis, respectively. The macromolecular proteins in hydrolysates were converted into micromolecular peptides (< 500 Da) when treated by DFSU, and antioxidant activity and angiotensin-I-converting enzyme (ACE) inhibitory activity of hydrolysates were increased. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) images illustrated the microstructure changes of feather protein particles in the ultrasound-assisted enzymatic hydrolysates of HFM (UEH), including more porous, smaller, and more uniform. Additionally, the conformation of protein molecules was significantly affected (P < 0.05), including the increase in free sulfhydryl (SH), the decrease in disulfide bond (SS) and surface hydrophobicity (H). Fourier transform infrared (FTIR) spectra analysis further showed that the secondary structure of feather proteins was modified with a reduction in α-helix, β-turn, and β-sheet, while an increase in random coil content was observed. These results indicated that DFSU could be a promising method to enhance high-concentration HFM for preparing peptide-rich hydrolysates with high antioxidant activity and ACE inhibitory activity.

摘要

超声辅助酶解已被应用于改善常规酶解,但关于超声在高浓度羽毛蛋白酶解中的应用鲜有报道。因此,本文研究了双频狭缝超声(DFSU)用于高浓度水解羽毛粉(HFM)酶解的可行性,以及水解产物的生物活性和结构特征。采用单因素试验优化超声处理参数:底物浓度、频率模式、间歇比、功率密度和时间。结果表明,与常规酶解相比,在最佳条件(200 g/L、28/80 kHz、5/2 s/s、600 W/L 和 3 h)下,蛋白质回收率和转化率分别提高了 6.08%和 18.63%。DFSU 处理将水解产物中的大分子蛋白质转化为小分子肽(<500 Da),并提高了水解产物的抗氧化活性和血管紧张素转化酶(ACE)抑制活性。扫描电子显微镜(SEM)和原子力显微镜(AFM)图像说明了 HFM 超声辅助酶解产物(UEH)中羽毛蛋白颗粒的微观结构变化,包括更多孔、更小和更均匀。此外,蛋白质分子的构象发生了显著变化(P<0.05),包括游离巯基(SH)增加,二硫键(SS)和表面疏水性(H)减少。傅里叶变换红外(FTIR)光谱分析进一步表明,羽毛蛋白的二级结构发生了修饰,α-螺旋、β-转角和β-折叠减少,而无规卷曲含量增加。这些结果表明,DFSU 可能是一种有前途的方法,可用于增强高浓度 HFM,以制备具有高抗氧化活性和 ACE 抑制活性的富含肽的水解产物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ecd9/9440303/03eeacaa3f91/gr1.jpg

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