狐尾椰果肉MRPs制备工艺、抗氧化活性与稳定性研究

    Study on Preparation Process, Antioxidant Activity and Stability of Maillard Reaction Products from Wodyetia bifurcata Pulp

    • 摘要: 为挖掘食品新型抗氧化剂,以狐尾椰果肉为原料制备美拉德反应产物(WBP-MRPs)与非美拉德反应对照产物(WBP-NMRPs),经体外抗氧化活性分析明确差异并制备高活性WBP-MRPs。采用Box-Behnken响应面法,以DPPH自由基清除率为指标优化WBP-MRPs制备工艺,同时从体外模拟胃肠消化稳定性、金属离子影响、温度及pH耐受性四个层面探究其应用潜力。结果表明:WBP-MRPs的DPPH自由基清除能力极显著优于WBP-NMRPs(P<0.01)。当样品浓度为0.8 mg·mL−1时,WBP-MRPs的自由基清除率约为WBP-NMRPs的3.78倍,两者差异显著。经响应面优化得出WBP-MRPs最佳制备工艺为反应温度85℃、反应时间73 min、反应体系pH值8,此条件下WBP-MRPs的DPPH自由基清除率为80.60%。进一步测定抗氧化活性参数,显示其对DPPH自由基、ABTS自由基及羟自由基的半数清除浓度(IC50)分别为(14.10±2.39) μg·mL−1、(9.58±1.01)mg·mL−1、(2.03±1.53) mg·mL−1。稳定性分析显示,WBP-MRPs经体外模拟胃肠消化后,抗氧化活性保留率达61.24%。在供试金属离子中,Ca2+、Cu2+、Zn2+、Fe2+可极显著地降低WBP-MRPs的抗氧化活性(P<0.01);而K+对其抗氧化活性无显著影响(P>0.05)。此外,当温度≤80℃时,WBP-MRPs抗氧化活性未发生显著变化(P>0.05);当pH≤8时,WBP-MRPs的抗氧化活性同样未发生显著变化(P>0.05)。这表明,WBP-MRPs的温度敏感阈值为80℃,pH敏感阈值为8。 综上,狐尾椰果肉制备的WBP-MRPs有良好抗氧化活性与胃肠消化稳定性,但对高温及碱性环境(pH>8)耐受性弱。研究结果为基于美拉德反应的抗氧化活性物质开发提供基础数据,为狐尾椰果肉的高值化加工利用提供参考。

       

      Abstract: To explore novel antioxidants, this study prepared Maillard reaction products(WBP-MRPs)and non-Maillard reaction control products(WBP-NMRPs)from Wodyetia bifurcata pulp. The differences between the two were clarified through in vitro antioxidant activity analysis, and high-activity WBP-MRPs were subsequently prepared. The Box-Behnken response surface methodology was employed to optimize the preparation process of WBP-MRPs using DPPH radical scavenging rate as the response indicator. Meanwhile, the application potential of WBP-MRPs was investigated from four aspect: in vitro simulated gastrointestinal digestion stability, the influence of metal ion, and tolerance to temperature and pH. The results showed that the DPPH radical scavenging capacity of WBP-MRPs was significantly superior to that of WBP-NMRPs(P<0.01). When the sample concentration was 0.8 mg·mL−1, the free radical scavenging rate of WBP-MRPs was approximately 3.78 times that of WBP-NMRPs, with a significant difference between the two. The optimal preparation process for WBP-MRPs obtained through response surface optimization was as follows: reaction temperature of 85°C, reaction time of 73 min, and reaction system pH of 8. Under these conditions, the DPPH radical scavenging rate of WBP-MRPs reached 80.60%. Further quantitative analysis of antioxidant activity characteristics indicated half-maximal inhibitory concentrations(IC50)of WBP-MRPs against DPPH radicals, ABTS radicals and hydroxyl radicals were 14.10±2.39 μg·mL−1, 9.58±1.01 mg·mL−1, and 2.03±1.53 mg·mL−1, respectively. Stability analysis demonstrated that after in vitro simulated gastrointestinal digestion, the antioxidant activity retention rate of WBP-MRPs was 61.24%. Among the tested metal ions, Ca2+, Cu2+, Zn2+, and Fe2+ could extremely significantly reduce on the antioxidant activity of WBP-MRPs(P<0.01), while K+ had no significant effect on its antioxidant activity(P>0.05). In addition, when the temperature was ≤ 80°C, the antioxidant activity of WBP-MRPs did not change significantly(P>0.05); when the pH was ≤ 8, the antioxidant activity of WBP-MRPs also did not change significantly(P > 0.05). This indicated that the temperature sensitivity threshold of WBP-MRPs was 80°C, and the pH sensitivity threshold was 8. In conclusion, WBP-MRPs prepared from W. bifurcata pulp exhibit favorable antioxidant activity and gastrointestinal digestion stability, but demonstrate weak tolerance to high temperature and alkaline environment(pH>8). This research results can provide basic data for the development of antioxidant active substances based on the Maillard reaction, and offer new ideas and theoretical support for the high-value processing and utilization of W. bifurcata pulp.

       

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