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Colloidal hydroxyethyl starch for tumor-targeted platinum delivery

Cis-platinum has been widely used as a first-line chemotherapy agent in clinics for more than 40 years. Although considerable efforts have been expended for developing platinum-based nano drug delivery systems (NDDS) to resolve the problems of low water solubility, short half-life, and severe side e...

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Detalles Bibliográficos
Autores principales: Xiao, Chen, Hu, Hang, Yang, Hai, Li, Si, Zhou, Hui, Ruan, Jian, Zhu, Yuting, Yang, Xiangliang, Li, Zifu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473228/
https://www.ncbi.nlm.nih.gov/pubmed/36133197
http://dx.doi.org/10.1039/c8na00271a
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author Xiao, Chen
Hu, Hang
Yang, Hai
Li, Si
Zhou, Hui
Ruan, Jian
Zhu, Yuting
Yang, Xiangliang
Li, Zifu
author_facet Xiao, Chen
Hu, Hang
Yang, Hai
Li, Si
Zhou, Hui
Ruan, Jian
Zhu, Yuting
Yang, Xiangliang
Li, Zifu
author_sort Xiao, Chen
collection PubMed
description Cis-platinum has been widely used as a first-line chemotherapy agent in clinics for more than 40 years. Although considerable efforts have been expended for developing platinum-based nano drug delivery systems (NDDS) to resolve the problems of low water solubility, short half-life, and severe side effects of cis-platinum, it remains challenging to apply these nanoplatforms to cancer treatments in clinics on account of the issues related to safety, complex fabrication procedures, and limited cellular uptake. Herein, we constructed a novel cis-platinum delivery system with hydroxyethyl starch (HES), which is a semisynthetic polysaccharide that has been used worldwide as colloidal plasma volume expanders (PVE) in clinics for several decades. By combining TEM, AFM, and DLS, we have found that HES particles are colloidal nanoparticles in solution, with diameters ranging from 15 to 40 nm as a function of molecular weight. We further revealed that HES adopted a hyperbranched colloidal structure with rather compact conformation. These results demonstrate that HES is a promising nanocarrier to deliver drug molecules. Taking advantage of the poly-hydroxyl sites of HES, we constructed a novel HES-based cis-platinum delivery nanoplatform. HES was directly conjugated with cis-platinum prodrug via an ester bond and decorated with an active targeting molecule, lactobionic acid (LA), contributing toward higher in vitro antitumor activity against hepatoma carcinoma cells as compared to cis-platinum. These results have significant implications for the clinically used plasma volume expander-HES and shed light on the clinical translation of HES-based nano drug delivery systems.
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spelling pubmed-94732282022-09-20 Colloidal hydroxyethyl starch for tumor-targeted platinum delivery Xiao, Chen Hu, Hang Yang, Hai Li, Si Zhou, Hui Ruan, Jian Zhu, Yuting Yang, Xiangliang Li, Zifu Nanoscale Adv Chemistry Cis-platinum has been widely used as a first-line chemotherapy agent in clinics for more than 40 years. Although considerable efforts have been expended for developing platinum-based nano drug delivery systems (NDDS) to resolve the problems of low water solubility, short half-life, and severe side effects of cis-platinum, it remains challenging to apply these nanoplatforms to cancer treatments in clinics on account of the issues related to safety, complex fabrication procedures, and limited cellular uptake. Herein, we constructed a novel cis-platinum delivery system with hydroxyethyl starch (HES), which is a semisynthetic polysaccharide that has been used worldwide as colloidal plasma volume expanders (PVE) in clinics for several decades. By combining TEM, AFM, and DLS, we have found that HES particles are colloidal nanoparticles in solution, with diameters ranging from 15 to 40 nm as a function of molecular weight. We further revealed that HES adopted a hyperbranched colloidal structure with rather compact conformation. These results demonstrate that HES is a promising nanocarrier to deliver drug molecules. Taking advantage of the poly-hydroxyl sites of HES, we constructed a novel HES-based cis-platinum delivery nanoplatform. HES was directly conjugated with cis-platinum prodrug via an ester bond and decorated with an active targeting molecule, lactobionic acid (LA), contributing toward higher in vitro antitumor activity against hepatoma carcinoma cells as compared to cis-platinum. These results have significant implications for the clinically used plasma volume expander-HES and shed light on the clinical translation of HES-based nano drug delivery systems. RSC 2018-11-26 /pmc/articles/PMC9473228/ /pubmed/36133197 http://dx.doi.org/10.1039/c8na00271a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Xiao, Chen
Hu, Hang
Yang, Hai
Li, Si
Zhou, Hui
Ruan, Jian
Zhu, Yuting
Yang, Xiangliang
Li, Zifu
Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title_full Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title_fullStr Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title_full_unstemmed Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title_short Colloidal hydroxyethyl starch for tumor-targeted platinum delivery
title_sort colloidal hydroxyethyl starch for tumor-targeted platinum delivery
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9473228/
https://www.ncbi.nlm.nih.gov/pubmed/36133197
http://dx.doi.org/10.1039/c8na00271a
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