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Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation

Drug delivery systems (DDSs) show great application prospects in tumor therapy. So far, physical encapsulation and covalent grafting were the two most common strategies for the construction of DDSs. However, physical encapsulation-based DDSs usually suffered from low drug loading capacity and poor s...

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Autores principales: Chen, Jiali, Huang, Haolong, Lu, Ruilin, Wan, Xiaohui, Yao, Yongchao, Yang, Tian, Li, Pengfei, Ning, Ning, Zhang, Shiyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981983/
https://www.ncbi.nlm.nih.gov/pubmed/35424584
http://dx.doi.org/10.1039/d1ra08624c
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author Chen, Jiali
Huang, Haolong
Lu, Ruilin
Wan, Xiaohui
Yao, Yongchao
Yang, Tian
Li, Pengfei
Ning, Ning
Zhang, Shiyong
author_facet Chen, Jiali
Huang, Haolong
Lu, Ruilin
Wan, Xiaohui
Yao, Yongchao
Yang, Tian
Li, Pengfei
Ning, Ning
Zhang, Shiyong
author_sort Chen, Jiali
collection PubMed
description Drug delivery systems (DDSs) show great application prospects in tumor therapy. So far, physical encapsulation and covalent grafting were the two most common strategies for the construction of DDSs. However, physical encapsulation-based DDSs usually suffered from low drug loading capacity and poor stability, and covalent grafting-based DDSs might reduce the activity of original drug, which greatly limited their clinical application. Therefore, it is of great research value to design a new DDS with high drug loading capacity, robust stability, and original drug activity. Herein, we report a super-amphiphile based drug delivery system (HBS-DDS) through self-assembly induced by hydrogen bonds between amino-substituted N-heterocycles of the 1,3,5-triazines and hydrophilic carmofur (HCFU). The resulting HBS-DDS had a high drug loading capacity (38.1%) and robust stability. In addition, the drug delivery system exhibited pH-triggered size change and release of drugs because of the pH responsiveness of hydrogen bonds. In particular, the anticancer ability test showed that the HBS-DDS could be efficiently ingested by tumor cells, and its half-maximal inhibitory concentration (IC(50) = 3.53 μg mL(−1)) for HeLa cells was close to that of free HCFU (IC(50) = 5.54 μg mL(−1)). The hydrogen bond-based DDS represents a potential drug delivery system in tumor therapy.
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spelling pubmed-89819832022-04-13 Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation Chen, Jiali Huang, Haolong Lu, Ruilin Wan, Xiaohui Yao, Yongchao Yang, Tian Li, Pengfei Ning, Ning Zhang, Shiyong RSC Adv Chemistry Drug delivery systems (DDSs) show great application prospects in tumor therapy. So far, physical encapsulation and covalent grafting were the two most common strategies for the construction of DDSs. However, physical encapsulation-based DDSs usually suffered from low drug loading capacity and poor stability, and covalent grafting-based DDSs might reduce the activity of original drug, which greatly limited their clinical application. Therefore, it is of great research value to design a new DDS with high drug loading capacity, robust stability, and original drug activity. Herein, we report a super-amphiphile based drug delivery system (HBS-DDS) through self-assembly induced by hydrogen bonds between amino-substituted N-heterocycles of the 1,3,5-triazines and hydrophilic carmofur (HCFU). The resulting HBS-DDS had a high drug loading capacity (38.1%) and robust stability. In addition, the drug delivery system exhibited pH-triggered size change and release of drugs because of the pH responsiveness of hydrogen bonds. In particular, the anticancer ability test showed that the HBS-DDS could be efficiently ingested by tumor cells, and its half-maximal inhibitory concentration (IC(50) = 3.53 μg mL(−1)) for HeLa cells was close to that of free HCFU (IC(50) = 5.54 μg mL(−1)). The hydrogen bond-based DDS represents a potential drug delivery system in tumor therapy. The Royal Society of Chemistry 2022-02-21 /pmc/articles/PMC8981983/ /pubmed/35424584 http://dx.doi.org/10.1039/d1ra08624c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chen, Jiali
Huang, Haolong
Lu, Ruilin
Wan, Xiaohui
Yao, Yongchao
Yang, Tian
Li, Pengfei
Ning, Ning
Zhang, Shiyong
Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title_full Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title_fullStr Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title_full_unstemmed Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title_short Hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
title_sort hydrogen-bond super-amphiphile based drug delivery system: design, synthesis, and biological evaluation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8981983/
https://www.ncbi.nlm.nih.gov/pubmed/35424584
http://dx.doi.org/10.1039/d1ra08624c
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