Yang Meng, Liu Jingbo, Liu Chunmei, Zhang Hui, Li Shanglin, Zhang Ting, Yu Zhipeng, Chi Xiwen, Zhang Zhihui, Du Zhiyang
Jilin Provincial Key Laboratory of Nutrition and Functional Food, College of Food Science and Engineering, Jilin University, Changchun 130062, China.
Key Laboratory of Bionic Engineering, Ministry of Education, College of Biological and Agricultural Engineering, Jilin University, Changchun 130025, China.
ACS Nano. 2025 Jan 14;19(1):600-620. doi: 10.1021/acsnano.4c11108. Epub 2025 Jan 2.
Orally targeting nanostrategies of multiple nutraceuticals have attracted increasing attention in ulcerative colitis (UC) therapy for superior patient compliance, cost-effectiveness, and biocompatibility. However, the actual targeting delivery and bioefficacy of nutraceuticals are extremely restricted by their poor solubility, interior gastrointestinal retention, and base permeability. Herein, we developed controllable colon-targeting nanoparticles (NPs) composed of a quaternary ammonium chitosan (HTCC) shell and succinic acid-modified γ-cyclodextrin (SACD) core for precise UC treatment. Egg white-derived peptides (EWDP, typical food-derived peptides) could not only function as potential cross-linkers to induce the differential coassembly with the above biopolymers but also aid the hydrophobic curcumin (Cur) solubility as well as nutrition enhancers for oral synergism of colitis therapy. More specifically, NPs with higher EWDP coassembly efficiency exhibited better pH-sensitive colloidal tunability (e.g., smaller size, higher rigidity, and roughness) and robust nutraceuticals (EWDP/Cur) coloading capacity (24.0-33.2% ≫ 10%, pH 2.0-7.0). Compared with pure nutraceuticals, NPs exhibited excellent cellular absorption (almost 10 times) and oral bioavailability (4.19-5.05 times) enhancement via faster mucus permeation and macropinocytosis transport, indirectly regulating the systemic inflammatory response. The sustainable sequential release and targeted accumulation profiles of NPs directly facilitated the interactions with the colonic microenvironment, verified by the intestinal barrier recovery and gut microbiota restoration. Moreover, the critical role of amino acid metabolism reconfirmed the importance of EWDP coassembly efficiency in maintaining intestinal homeostasis. Overall, this study would provide a facile, quantitative, and versatile perspective into the programmable design of food-derived peptide (e.g., EWDP) coassembled nanoplatforms for oral targeted therapy of UC.
多种营养保健品的口服靶向纳米策略在溃疡性结肠炎(UC)治疗中因具有卓越的患者依从性、成本效益和生物相容性而受到越来越多的关注。然而,营养保健品的实际靶向递送和生物功效受到其低溶解度、胃肠道内滞留和基础渗透性的极大限制。在此,我们开发了由季铵化壳聚糖(HTCC)外壳和琥珀酸修饰的γ-环糊精(SACD)核心组成的可控结肠靶向纳米颗粒(NPs),用于精确的UC治疗。蛋清衍生肽(EWDP,典型的食物衍生肽)不仅可以作为潜在的交联剂,诱导与上述生物聚合物的差异共组装,还可以帮助疏水性姜黄素(Cur)溶解,以及作为营养增强剂用于结肠炎治疗的口服协同作用。更具体地说,具有更高EWDP共组装效率的NPs表现出更好的pH敏感胶体可调性(例如,更小的尺寸、更高的刚性和粗糙度)以及强大的营养保健品(EWDP/Cur)共载能力(24.0 - 33.2% ≫ 10%,pH 2.0 - 7.0)。与纯营养保健品相比,NPs通过更快的黏液渗透和巨胞饮作用运输表现出优异的细胞吸收(几乎是10倍)和口服生物利用度增强(4.19 - 5.05倍),间接调节全身炎症反应。NPs的可持续顺序释放和靶向积累特性直接促进了与结肠微环境的相互作用,这通过肠道屏障恢复和肠道微生物群恢复得到证实。此外,氨基酸代谢的关键作用再次证实了EWDP共组装效率在维持肠道稳态中的重要性。总体而言,本研究将为用于UC口服靶向治疗的食物衍生肽(例如EWDP)共组装纳米平台的可编程设计提供一个简便、定量和通用的视角。