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Updated: Feb 28, 2026

Facile Preparation of Internally Self-assembled Lipid Particles Stabilized by Carbon Nanotubes
Published on: February 19, 2016
Membrane-anchoring engineering mediated the self-assembly of multifunctional nanocarriers: An efficient platform for
Jingyu Si1, Dandan Wang1, Yuming Wang1
1State Key Laboratory of Marine Food Processing & Safety Control, College of Food Science and Engineering, Ocean University of China, Qingdao 266404, China.
None:
To overcome the instability of astaxanthin (AST) during processing and gastrointestinal delivery, this study developed a multifunctional nanocarrier through the precise self-assembly of lipid bilayers that incorporated d-α-tocopherol polyethylene glycol 1000 succinate, a widely used biocompatible surfactant known as TPGS. Multidimensional characterization results demonstrated that the incorporation of TPGS formed a stable hydration layer, contributing to the distinctive mushroom-cloud-like architecture on the liposome surface. Spectroscopic analysis confirmed that the hydrophobic segment of TPGS was effectively embedded into the lipid membrane through intermolecular forces, while the hydrophilic segment formed an orderly arranged structure at the interface. Interfacial analysis revealed that low-concentration TPGS formed an ordered monolayer through a membrane-anchoring strategy, thereby assembling into a three-dimensional protective architecture on the liposome interface. This structure significantly enhanced transepithelial transport and antioxidant activity, while also demonstrating excellent biosafety in subsequent in vitro assays. This study presents an innovative and robust delivery system for AST through molecular-level interface engineering, advancing the application of functional amphiphilic polymers in the field of precision nutrient delivery.
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