Guangdong Provincial Key Laboratory of Nutraceuticals and Functional Foods, College of Food Science, South China Agricultural University, Guangzhou 510642, PR China.
Research Center of Food Colloids and Delivery of Functionality, College of Food Science and Nutritional Engineering, China Agricultural University, Beijing 100083, PR China.
J Control Release. 2022 Nov;351:324-340. doi: 10.1016/j.jconrel.2022.09.041. Epub 2022 Sep 23.
The intervention effects of delivery systems on the digestion and adsorption profiles and, thus, the pharmacological effects of bioactive compounds represent an intriguing scientific hypothesis that can be proven with research case studies. Delivery systems with tailor-made structures fabricating from the same building materials offer a new research strategy for deciphering the modulating effects of the digestive fate on the therapeutic efficacy of encapsulated bioactive compounds. Herein, we developed capsaicin-loaded core-shell nanoparticles (Cap NPs), microparticles (Cap MPs) and nano-in-micro particles (Cap NPs in MPs) and investigated their regulatory effects on the digestive fate and colitis-alleviating mechanisms of capsaicin. Results suggested that the small intestine dominant absorption of Cap NPs differed significantly with the colorectal dominated accumulation of Cap MPs and Cap NPs in MPs in terms of the colitis alleviating mechanisms. Cap NPs alleviated colitis mainly through promoting the colonization of short-chain fatty acid-producing bacteria, maintaining intestinal barrier homeostasis and partially inhibiting the activation of the NF-κB pro-inflammatory pathway. Whereas, better dietary intervention effects were achieved from Cap NPs in MPs via promoting the proliferation of mucus-related bacteria and enhanced triggering efficiency on the TRPV1-mucus-microbiotas cyclic cascade. This work confirmed that rationally designed biomaterial-based delivery vehicles can flexibly interfere with the therapeutic mechanisms of encapsulated cargos, representing a new horizon in the field of precise nutrition.
递药系统对生物活性化合物的消化和吸收特征的干预效应,进而对其药理效应的影响,这是一个非常有趣的科学假说,可以通过研究案例来证明。采用相同构建材料构建具有定制结构的递药系统为解析消化命运对包封生物活性化合物治疗效果的调控作用提供了新的研究策略。在此,我们制备了负载辣椒素的核壳纳米粒(Cap NPs)、微球(Cap MPs)和纳米载入微球(Cap NPs 载入 MPs),并研究了它们对辣椒素的消化命运和缓解结肠炎机制的调控作用。结果表明,Cap NPs 的小肠优势吸收与 Cap MPs 和 Cap NPs 载入 MPs 的大肠优势蓄积在缓解结肠炎机制方面有显著差异。Cap NPs 通过促进短链脂肪酸产生菌的定植、维持肠道屏障稳态和部分抑制 NF-κB 促炎途径的激活来缓解结肠炎。而 Cap NPs 载入 MPs 则通过促进黏液相关细菌的增殖和增强 TRPV1-黏液-微生物群周期性级联反应的触发效率,从而实现更好的饮食干预效果。这项工作证实了,合理设计的基于生物材料的递药载体可以灵活地干扰包封载体的治疗机制,这代表了精准营养领域的一个新前沿。