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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/9825
Title: Polysorbasome: A Colloidal Vesicle Contoured by Polymeric Bioresorbable Amphiphiles as an Immunogenic Depot for Vaccine Delivery
Authors: Chiung-Yi Huang
Chung-Hsiung Huang 
Shih-Jen Liu
Hsin-Wei Chen
Chih-Hsiang Leng
Pele Chong
Ming-Hsi Huang
Keywords: Vesicles;amphiphiles;antigens;Colloids;vaccination
Issue Date: Apr-2018
Publisher: ACS Publications
Journal Volume: 10
Journal Issue: 15
Start page/Pages: 12553–12561
Source: Acs Applied Materials & Interfaces
Abstract: 
To accomplish an innovative vaccine design, there are two key challenges: developing formulations that avoid cold chain shipment and finding a delivery vehicle that is absorbable in vivo. Here, we explored the design and performance of a colloidal vesicle that enabled us to consider both challenges. We used polymeric bioresorbable amphiphiles as surface-active agents for stabilizing oily/aqueous interfaces and formed a colloidal vehicle named polysorbasome (PSS, polymeric absorbable vesicle), without using conventional emulsifiers such as sorbitan esters or their ethoxylates. Homogenizing the oil/water compartments forms a colloid containing an aqueous solution in its core and provides an oily barrier that isolates the encapsulated material from external materials. In this form, the PSS serves as a depot for sustained delivery of vaccine antigens. Following vaccination, the antigen-specific antibodies and the cell-mediated immunity can be manipulated after the antigen being formulated with PSS particles. Then, the degradability intrinsic to the polymeric bioresorbable amphiphiles complies with the destruction and further absorbance of the vehicles in vivo. The structural features of these versatile vesicles based on bioresorbable amphiphilic engineering may provide new insights into vaccine delivery.
URI: http://scholars.ntou.edu.tw/handle/123456789/9825
ISSN: 1944-8244
DOI: 10.1021/acsami.8b03044
Appears in Collections:食品科學系

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