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通过冷冻干燥法制备载蛋白纳米粒。

Formulation of protein-loaded nanoparticles via freeze-drying.

机构信息

Center for Research in Molecular Medicine & Chronic Diseases (CIMUS), University of Santiago de Compostela, Campus Vida, Santiago de Compostela, 15782, Spain.

Health Research Institute of Santiago de Compostela (IDIS), University of Santiago de Compostela, Campus Vida, Santiago de Compostela, 15782, Spain.

出版信息

Drug Deliv Transl Res. 2024 Dec;14(12):3640-3653. doi: 10.1007/s13346-024-01712-9. Epub 2024 Sep 28.

DOI:10.1007/s13346-024-01712-9
PMID:39342023
Abstract

Several nanotechnology-based formulation strategies have been reported for the oral administration of biological drugs. However, a prerequisite often overlooked in developing these formulations is their adaptation to a solid dosage form. This study aimed to incorporate a freeze-drying step, using either mannitol or sucrose laurate (SLAE), into the formulation of new insulin-zinc nanocomplexes to render them resistant to intestinal fluids while maintaining a high protein loading. The resulting freeze-dried insulin-zinc nanocomplexes exhibited physicochemical properties consistent with the target product profile, including a particle size of ∼ 100 nm, a zeta potential close to neutrality (∼ -15 mV) and a high association efficiency (> 90%). Importantly, integrating the freeze-drying step in the formulation significantly improved the colloidal stability of the system and preserved the stability of the insulin molecules. Results from in vitro and in vivo studies indicated that the insulin activity remained fully retained throughout the entire formulation and freeze-drying processes. In brief, we present a novel protein formulation strategy that incorporates a critical freeze-drying step, resulting in a dry powder enabling efficient protein complexation with zinc and optimized for oral administration.

摘要

已有几种基于纳米技术的制剂策略被报道用于生物药物的口服给药。然而,在开发这些制剂时,常常被忽视的一个前提条件是它们要适应固体制剂形式。本研究旨在将冷冻干燥步骤(使用甘露醇或蔗糖月桂酸酯(SLAE))纳入新的胰岛素-锌纳米复合物的制剂中,使其能够抵抗肠道液,同时保持高蛋白质载量。所得的冷冻干燥胰岛素-锌纳米复合物表现出与目标产品特性一致的物理化学性质,包括约 100nm 的粒径、接近中性的 ζ 电位(约-15mV)和高结合效率(>90%)。重要的是,在制剂中整合冷冻干燥步骤显著提高了系统的胶体稳定性,并保持了胰岛素分子的稳定性。体外和体内研究结果表明,胰岛素的活性在整个制剂和冷冻干燥过程中都得到了完全保留。总之,我们提出了一种新的蛋白质制剂策略,该策略包含一个关键的冷冻干燥步骤,形成一种干粉,能够有效地与锌复合,并优化了口服给药。

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本文引用的文献

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