Non-Covalent Interaction of Folic Acid and 5-Methyltetrahydrofolate with Caseinates Improves the Folates Stability Studied by Multi-Spectroscopic Analysis and Molecular Docking
Author:
He Linlin1, Yan Yuqian1, Zhang Gang1, Zhao Yanna1, Zhao Fa2, Ding Zhuang1, Wang Zhengping1
Affiliation:
1. Institute of Biopharmaceutical Research, Liaocheng University, Liaocheng 252059, China 2. Shandong Institute for Food and Drug Control, Jinan 250101, China
Abstract
Folates, a crucial B-group vitamin, serve as a significant functional food supplement. Nevertheless, considerable obstacles persist in improving folates stability in liquid products. In this study, folic acid (FA) and 5-methyltetrahydrofolate (MTFA), two approved sources of folates, were encapsulated with sodium caseinate (NaCas) to enhance their stability. The protective effect of NaCas on folate molecules was investigated using experimental and computational methods. Meanwhile, the influence of divalent calcium ion (Ca2+) on the properties of the NaCas-MTFA complex was examined to evaluate the potential application of calcium 5-methyltetrahydrofolate (CaMTFA). Fluorescence tests showed both folates had static quenching behavior and bound to NaCas with a binding constant of 104–105 M−1. Hydrophobic interactions were crucial in NaCas-FA complex formation, while hydrogen bonding drove NaCas-MTFA binding. The encapsulation of caseinate notably slowed down the degradation of folates under both light and dark conditions. Moreover, the addition of a low concentration of Ca2+ did not adversely impact the binding mechanism of the NaCas-MTFA complex or the degradation curve of MTFA. The results of this study could serve as a valuable resource for the utilization of caseinates in incorporating folates, specifically MTFA, in the creation of natural liquid dietary supplements.
Funder
Natural Science Foundation of Shandong Province Youth Innovation Technology Project of Higher School in Shandong Province
Reference63 articles.
1. Folates: Stability and interaction with biological molecules;Wusigale;J. Agric. Food Res.,2020 2. Folates: Chemistry, analysis, occurrence, biofortification and bioavailability;Saini;Food Res. Int.,2016 3. Liu, M., Chen, Q., Sun, Y., Zeng, L., Wu, H., Gu, Q., and Li, P. (2020). Probiotic potential of a folate-producing strain Latilactobacillus sakei LZ217 and its modulation effects on human gut microbiota. Foods, 11. 4. 5-methyltetrahydrofolate is a crucial factor in determining the bioaccessibility of folate in bread;Liu;J. Agric. Food Chem.,2022 5. Lian, Z., Wu, Z., Gu, R., Wang, Y., Wu, C., Cheng, Z., He, M., Wang, Y., Cheng, Y., and Gu, H.F. (2022). Evaluation of cardiovascular toxicity of folic acid and 6S-5-methyltetrahy-drofolate-calcium in early embryonic development. Cells, 11.
|
|