College or Textile Science and Engineering (International institute of Silk), Zhejiang Sci-Tech University, Hangzhou 310018, China.
Food Funct. 2021 Aug 21;12(16):7469-7479. doi: 10.1039/d1fo00128k. Epub 2021 Jul 1.
Bacterial infections and multidrug resistance can seriously endanger the health and lives of humans, therefore the development of novel and efficient antibacterial strategies and drugs is urgently needed. Herein, a series of highly biocompatible lysine modified enzymatic hydrolysis lignins (EHL-Lys-x) were synthesized using the Mannich reaction. The sterilizing efficiency of EHL-Lys-2.0 against S. aureus and E. coli at 20 mg mL is 93% and 50%, respectively, which is 26% higher than pure EHL. Quartz crystal microbalance with dissipation monitoring (QCM-D) and atomic force microscopy (AFM) analysis showed that the adsorption and adhesive force between EHL-Lys-x and bacteria increase with the increased amount of grafting of Lys on EHL owing to the increase of the electrostatic interaction between the EHL-Lys-x and bacteria, which results in an improvement in the antimicrobial activity of EHL-Lys-x. Subsequently, EHL-Lys-x combined with alkyl polyglucoside (APG) was used to stabilize the high internal phase emulsion containing curcumin (HIPEs-cur). The dispersed phase fraction of HIPE-cur is 87 vol%, which is the highest internal phase reported to date in the medical research area. The highest residual levels of curcumin in HIPEs are 60-fold, 3-fold and 5-fold compared to that in bulk oil after treatment with UV radiation, thermal emittance and after storage, respectively. The minimum inhibitory concentrations of HIPEs-cur against S. aureus and E. coli were found to be 1.56 and 6.25 mg mL, respectively, which are far higher than that of pure EHL-Lys-x. This strategy not only increases the chemical stability and bioavailability of curcumin, but also provides a novel method for the application of lignin in biomedical science.
细菌感染和多重耐药性会严重威胁人类的健康和生命,因此,迫切需要开发新型、高效的抗菌策略和药物。在此,我们通过曼尼希反应合成了一系列高生物相容性的赖氨酸修饰酶解木质素(EHL-Lys-x)。在 20 mg mL 的浓度下,EHL-Lys-2.0 对金黄色葡萄球菌和大肠杆菌的杀菌效率分别为 93%和 50%,比纯 EHL 高 26%。石英晶体微天平耗散监测(QCM-D)和原子力显微镜(AFM)分析表明,EHL-Lys-x 与细菌之间的吸附和粘附力随着赖氨酸接枝量的增加而增加,这是由于 EHL-Lys-x 与细菌之间的静电相互作用增加,从而提高了 EHL-Lys-x 的抗菌活性。随后,EHL-Lys-x 与烷基糖苷(APG)结合,用于稳定含有姜黄素的高内相乳液(HIPEs-cur)。HIPE-cur 的分散相分数为 87 vol%,这是目前在医学研究领域报道的最高内相分数。与对照相比,在 HIPEs 中姜黄素的残留水平在经过紫外线辐射、热辐射和储存处理后分别提高了 60 倍、3 倍和 5 倍。HIPEs-cur 对金黄色葡萄球菌和大肠杆菌的最低抑菌浓度分别为 1.56 和 6.25 mg mL,远高于纯 EHL-Lys-x。该策略不仅提高了姜黄素的化学稳定性和生物利用度,而且为木质素在生物医学科学中的应用提供了一种新方法。