OAK

Protein-induced metamorphosis of unilamellar lipid vesicles to multilamellar hybrid vesicles

Metadata Downloads
Author(s)
Koo, Bon IlKim, InhyeYang, Moon YoungJo, Sung DukKoo, KunmoShin, S. Y.Park, K. M.Yuk, Jong MinLee, EunjiNam, Yoon Sung
Type
Article
Citation
Journal of Controlled Release, v.331, pp.187 - 197
Issued Date
2021-03
Abstract
Protein encapsulation into nanocarriers has been extensively studied to improve the efficacy and stability of therapeutic proteins. However, the chemical modification of proteins or new synthetic carrier materials are essential to achieve a high encapsulation efficiency and structural stability of proteins, which hinders their clinical applications. New strategies to physically incorporate proteins into nanocarriers feasible for clinical uses are required to overcome the current limitation. Here we report the spontaneous protein-induced reorganization of ‘pre-formed’ unilamellar lipid vesicles to efficiently incorporate proteins within multilamellar protein-lipid hybrid vesicles without chemical modification. Epidermal growth factor (EGF) binds to the surface of cationic unilamellar lipid vesicles and induces layer-by-layer self-assembly of the vesicles. The protein is spontaneously entrapped in the interstitial layers of a multilamellar structure with extremely high loading efficiency, ~99%, through polyionic interactions as predicted by molecular dynamics simulation. The loaded protein exhibits much higher structural, chemical, and biological stability compared to free protein. The method is also successfully applied to several other proteins. This work provides a promising method for the highly efficient encapsulation of therapeutic proteins into multilamellar lipid vesicles without the use of specialized instruments, high energy, coupling agents, or organic solvents.
Publisher
Elsevier BV
ISSN
0168-3659
DOI
10.1016/j.jconrel.2021.01.004
URI
https://scholar.gist.ac.kr/handle/local/11652
공개 및 라이선스
  • 공개 구분공개
파일 목록
  • 관련 파일이 존재하지 않습니다.

Items in Repository are protected by copyright, with all rights reserved, unless otherwise indicated.