College of Life Science, China West Normal University, Nanchong 637009, China.
School of Life Science and Technology, Harbin Institute of Technology, Harbin 150000, China.
Molecules. 2024 Jan 2;29(1):245. doi: 10.3390/molecules29010245.
polysaccharides used in polyphenol encapsulation and delivery under weightlessness are rarely reported. In this study, an anionic polysaccharide fragment named AAP Iα with a molecular weight of 133.304 kDa was isolated and purified to construct a polyphenol encapsulation system. Nanoparticles named NPs-PP loaded with a rough surface for polyphenol (PP) delivery were fabricated by AAP Iα and ε-poly-L-lysine (ε-PL). SEM and the DLS tracking method were used to observe continuous changes in AAP Iα, ε-PL and PP on the nanoparticles' rough surface assembly, as well as the dispersion and stability. Hydrophilic, monodisperse and highly negative charged nanoparticles can be formed at AAP Iα 0.8 mg/mL, ε-PL 20 μg/mL and PP 80 μg/mL. FT-IR was used to determine their electrostatic interactions. Release kinetic studies showed that nanoparticles had an ideal gastrointestinal delivery effect. NPs-PP loaded were assembled through electrostatic interactions between polyelectrolytes after hydrogen bonding formation in PP-AAP Iα and PP-ε-PL, respectively. Colon adhesion properties and PP delivery in vivo of nanoparticles showed that NPs-PP loaded had high adhesion efficiency to the colonic mucosa under simulated microgravity and could enhance PP bioavailability. These results suggest that AAP Iα can be used in PP encapsulation and delivery under microgravity in astronaut food additives.
在微重力条件下用于多酚包封和递送的多糖很少有报道。在这项研究中,分离和纯化了一种阴离子多糖片段,命名为 AAP Iα,分子量为 133.304 kDa,用于构建多酚包封系统。通过 AAP Iα 和 ε-聚-L-赖氨酸(ε-PL)制备了负载有粗糙表面的多酚(PP)递送的纳米粒子 NPs-PP。SEM 和 DLS 跟踪法用于观察 AAP Iα、ε-PL 和 PP 在纳米粒子粗糙表面组装上的连续变化,以及分散和稳定性。在 AAP Iα 0.8 mg/mL、ε-PL 20 μg/mL 和 PP 80 μg/mL 时,可以形成亲水、单分散和带高负电荷的纳米粒子。FT-IR 用于确定它们的静电相互作用。释放动力学研究表明,纳米粒子具有理想的胃肠递送效果。NPs-PP 是通过氢键形成后,分别在 PP-AAP Iα 和 PP-ε-PL 中通过聚电解质之间的静电相互作用组装的。纳米粒子的结肠黏附特性和体内 PP 递送表明,负载的 NPs-PP 在模拟微重力下对结肠黏膜具有高黏附效率,并且可以提高 PP 的生物利用度。这些结果表明,AAP Iα 可用于宇航员食品添加剂中微重力下的 PP 包封和递送。