Preparation, characterization, and in vivo evaluation of glycyrrhetinic acid-mediated nano-drug delivery system co-loaded with syringopicroside and hydroxytyrosol
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Published:2023-08-25
Issue:3
Volume:38
Page:392-411
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ISSN:0885-3282
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Container-title:Journal of Biomaterials Applications
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language:en
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Short-container-title:J Biomater Appl
Author:
Guan QingXia1ORCID,
Li Ying1,
Sun Jialin2,
Zhang Weibing1,
Zhang Xue1,
Liu Yumeng1,
Zhou XiaoYing1,
Li XiuYan1
Affiliation:
1. Key Laboratory of Basic and Application Research of Beiyao, Ministry of Education, Heilongjiang University of Chinese Medicine, Harbin, China
2. Department of Biological Science and Technology, Heilongjiang Vocational College for Nationalities, Harbin, China
Abstract
This study aimed to create a glycyrrhetinic acid (GA)-mediated, multi-component, self-assembled nano-drug delivery system co-loaded with syringopicroside (S) and hydroxytyrosol (H) obtained from Syringa Linn by synthesizing a GA-polyethylene glycol-poly (lactic acid-co-glycolic acid) (GPP) nanoparticle delivery carrier to actively target the liver. The nanoparticles were optimized using the central composite design. Nanoparticle characterization, cytotoxicity, pharmacodynamics, and tissue distribution study were performed. The optimized SH-GPP nanoparticle was a white solid powder, which was safe and non-toxic. The particle size and Zeta potential of the nanoparticles were 101.5 ± 3.18 nm and −23.3 ± 0.82 mV, respectively. The polydispersity index value (PDI) was 0.190 ± 0.005; the particle size distribution was comparatively uniform. The average total encapsulation efficiency of the optimized SH-GPP nanoparticle was 50.26% ± 1.29%, and drug loading was 15.47% ± 0.39%. After S and H were arranged into nanoparticles, the proliferation inhibition of HepG2.2.15 cells was improved, and the aim of drug-loaded synergism between GPP and SH was achieved. The GA-mediated nanoparticles were better targeted, were retained longer in vivo, and had higher concentrations in the liver than the unmodified nanoparticles. These nanoparticles have the potential to be a new effective anti-hepatitis B treatment and have great research potential in clinical treatment.
Funder
The 2017 Harbin application technology and development project
The Science and Technology Research Project of Heilongjiang Provincial Education Department
Heilongjiang Provincial Natural Science Foundation
The Heilongjiang Provincial Natural Science Foundation
The Heilongjiang Traditional Chinese Medicine Research Project
Publisher
SAGE Publications
Subject
Biomedical Engineering,Biomaterials
Cited by
1 articles.
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