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中国精品科技期刊2020

小麦醇溶蛋白肽凝胶制备及其结构特性

Preparation and Structural Characterization of Gliadin Peptide Gel

  • 摘要: 为探究小麦醇溶蛋白肽的自组装凝胶行为,以开发新型植物基功能凝胶材料,本文通过碱性蛋白酶限制性酶解小麦醇溶蛋白,并经超滤获得目标肽段,综合运用质构分析、流变测定、扫描电镜(scanning electron microscopy,SEM)、原子力显微镜(atomic force microscopy,AFM)、Zeta电位、FT-IR光谱、疏水性及二硫键测定等多尺度方法,系统评估其理化特性、微观形态与分子机制。结果表明,小麦醇溶蛋白肽的分子量集中分布在1~5 kDa,该肽段在15%浓度下即可形成稳定凝胶,其硬度随浓度递增;流变行为呈现剪切稀化特性,SEM及AFM显示凝胶具有规整多孔结构及均匀纳米球状形态;Zeta电位(−43.63±1.41 mV)表明体系具备良好胶体稳定性。分子机制上,FT-IR证实氢键为主要驱动力,α-螺旋含量增加(25.1%→37.9%)是关键构象转变,疏水作用与二硫键交换共同促进组装;序列分析揭示其具典型(XZXZ)n及(UCUC)n两亲性排列模式。本研究创新性地揭示了小麦醇溶蛋白肽通过氢键主导的多重分子作用力形成稳定自组装凝胶的机制,为植物肽基凝胶在食品质构改良与药物递送载体中的应用提供了理论依据与材料基础。

     

    Abstract: To explore the self-assembly gelation behavior of wheat gliadin peptides and develop novel plant-based functional gel materials, the targeted peptide segment was acquired via ultra-filtration through the controlled enzymatic hydrolysis of gliadin by alkaline protease in this study. A series of multi-scale characterization methods, including texture profile analysis, rheometry, scanning electron microscopy (SEM), atomic force microscopy (AFM), Zeta potential analysis, FT-IR spectroscopy, hydrophobicity determination, disulfide bond determination, and so on were comprehensively employed to assess its physico-chemical property, micro-structure and molecular mechanism. According to the findings, the molecular weight of gliadin peptide ranged predominantly from 1 to 5 kDa. This peptide segment could form a stable gel at a concentration of 15%, and its hardness increased with concentration. Its rheological behavior showed shear-thinning characteristics; SEM and AFM revealed that the gel featured regular porous structure and uniform nano-spheric morphology; Zeta potential analysis (−43.63±1.41 mV) indicated an excellent colloidal stability. In terms of molecular mechanism, FT-IR spectroscopy confirmed the hydrogen bonding as its primary driving force, with the increased α-helix content (25.1%→37.9%) representing the crucial conformational transition; hydrophobic interaction and disulfide bond exchange jointly promotes assembly; sequence analysis revealed typical amphiphilic arrangement patterns of (XZXZ)n and (UCUC)n. This study has innovatively elucidated the mechanism by which gliadin peptide forms a stable self-assembled gel via hydrogen-bond-dominated molecular forces. It provides both a theoretical basis and a material foundation for professionals to apply the plant peptide-based gel into food texture profile improvement and pharmaceutical delivery vector development.

     

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