Jiang Liu, Zheng Kang
School of Agricultural Engineering and Food Science, Shandong University of Technology, Zibo, Shandong 255049, China; School of Life Sciences and Medicine, Shandong University of Technology, Zibo, Shandong 255049, China.
School of Life Sciences and Medicine, Shandong University of Technology, Zibo, Shandong 255049, China.
Int J Biol Macromol. 2024 Sep 21;280(Pt 3):135913. doi: 10.1016/j.ijbiomac.2024.135913.
By incorporating the hydrophobic deep eutectic solvents (DESs) into the three-phase partitioning (TPP) technique, a TPP-based method was developed to extract the chia seed polysaccharide (CSP) from chia seed. Through a single-factor experiment and response-surface model, the optimal condition for the TPP extraction was determined as DES composed of dodecanoic acid and octanoic acid in a 1:1 M ratio, (NH)SO concentration of 32.86 %, crude extract-DES ratio of 0.93 (v/v), aqueous phase pH of 4.38, extraction temperature of 35 °C, and extraction time of 10 min. The polysaccharide yield of the constructed TPP method is 8.65 %, which is higher than the conventional water extraction method (yield is 6.96 %). Molecular dynamics simulations reveal the phase behavior of proteins and polysaccharides in the TPP system, showing that noncovalent interactions play a crucial role in the TPP system. The CSP obtained by the TPP method exhibits distinctive composition, structural, physicochemical, and functional properties, leading to improved thermal stability, rheological behavior, and antioxidant performance. Compared with the traditional extraction method, efficient extraction of CSP can be achieved flexibly using the proposed TPP approach, resulting in high yield and quality of CSP, which provides a new path for the large-scale utilization of chia seed.
通过将疏水性低共熔溶剂(DESs)引入三相分配(TPP)技术,开发了一种基于TPP的方法从奇亚籽中提取奇亚籽多糖(CSP)。通过单因素实验和响应面模型,确定了TPP提取的最佳条件为:由十二烷酸和辛酸以1:1摩尔比组成的DES,(NH)₂SO₄浓度为32.86%,粗提物与DES的比例为0.93(v/v),水相pH值为4.38,提取温度为35℃,提取时间为10分钟。构建的TPP方法的多糖产率为8.65%,高于传统水提取方法(产率为6.96%)。分子动力学模拟揭示了TPP系统中蛋白质和多糖的相行为,表明非共价相互作用在TPP系统中起关键作用。通过TPP方法获得的CSP具有独特的组成、结构、物理化学和功能特性,从而提高了热稳定性、流变行为和抗氧化性能。与传统提取方法相比,使用所提出的TPP方法可以灵活地实现CSP的高效提取,从而获得高产率和高质量的CSP,为奇亚籽的大规模利用提供了一条新途径。