Department of Pharmaceutics, College of Pharmacy, Army Medical University, No. 30 Gaotanyan Main St., 400038 Chongqing, People's Republic of China.
Academy of Chinese Medical Sciences, Zhejiang Chinese Medical University, BinwenRD548, 10053 Hangzhou, Zhejiang Province, People's Republic of China.
ACS Nano. 2024 Jun 25;18(25):16166-16183. doi: 10.1021/acsnano.4c01245. Epub 2024 Jun 12.
In the harsh gastrointestinal tract, helical bacteria with hierarchical chiral architectures possess strong abilities. Taking inspirations from nature, we developed a multichiral mesoporous silica nanoscrew (L/D-MCNS) as an efficient oral drug delivery platform by modifying the structural chiral silica nanoscrew (CNS) with L/D-alanine (L/D-Ala) enantiomers via the sequential application of a chiral template and postmodification strategies. We demonstrated that L-MCNS showed differential biological behaviors and superior advantages in oral adsorption compared to those of CNS, D-MCNS, and DL-MCNS. During the delivery, helical L/D-MCNS presenting distinctive topological structures, including small section area, large rough external surface, and a screw-like body, displayed multiple superiorities in mucus diffusion and mucosal adhesion. Meanwhile, the grafted chiral enantiomers enabled positive or negative chiral recognition with the biosystems. Once racemic flurbiprofen (FP) was encapsulated into the nanopores of L/D-MCNS (FP@L/D-MCNS), L/D-MCNS providing highly cross-linked and mesoscopic chiral nanochannels was beneficial for controlling the drug loading/release kinetics with chiral microenvironment sensitivity. Particularly, we noticed enantioselective absorption of FP , which could be attributed to the differential biological behaviors of L/D-MCNS. By simple design and regulation of the multilevel chirality of nanocarriers, L/D-MCNS can be employed for efficient oral drug delivery from the perspectives of material science, pharmacy, and bionics.
在恶劣的胃肠道环境中,具有分级手性结构的螺旋细菌具有强大的能力。受自然启发,我们通过顺序应用手性模板和后修饰策略,用 L/D-丙氨酸(L/D-Ala)对映异构体修饰结构手性二氧化硅纳米螺旋(CNS),开发了一种多手性介孔二氧化硅纳米螺旋(L/D-MCNS)作为有效的口服药物递送平台。我们证明 L-MCNS 与 CNS、D-MCNS 和 DL-MCNS 相比,在口服吸附方面表现出不同的生物学行为和优势。在递送过程中,呈现独特拓扑结构的螺旋 L/D-MCNS,包括小截面积、大粗糙外表面和螺旋体,在粘液扩散和粘膜粘附方面表现出多种优势。同时,接枝的手性对映异构体使生物体系具有正或负手性识别能力。一旦外消旋氟比洛芬(FP)被包裹到 L/D-MCNS 的纳米孔中(FP@L/D-MCNS),L/D-MCNS 提供高度交联和介观手性纳米通道有利于控制药物载药/释放动力学,并具有手性微环境敏感性。特别是,我们注意到 FP 的对映体选择性吸收,这可归因于 L/D-MCNS 的不同生物学行为。通过对手性纳米载体的多层次手性进行简单的设计和调节,L/D-MCNS 可以从材料科学、药学和仿生学的角度用于高效的口服药物递送。