纳米载体
吸入
脂质体
化学
药理学
Zeta电位
体内
药物输送
毒品携带者
阿霉素
纳米颗粒
医学
材料科学
纳米技术
化疗
生物化学
麻醉
外科
有机化学
生物技术
生物
作者
Olga B. Garbuzenko,Gediminas Mainelis,Oleh Taratula,Tamara Minko
出处
期刊:PubMed
[National Institutes of Health]
日期:2014-03-01
卷期号:11 (1): 44-55
被引量:98
标识
DOI:10.7497/j.issn.2095-3941.2014.01.004
摘要
OBJECTIVE: Various nanoparticles have been designed and tested in order to select optimal carriers for the inhalation delivery of anticancer drugs to the lungs. METHODS: THE FOLLOWING NANOCARRIERS WERE STUDIED: micelles, liposomes, mesoporous silica nanoparticles (MSNs), poly propyleneimine (PPI) dendrimer-siRNA complexes nanoparticles, quantum dots (QDs), and poly (ethylene glycol) polymers. All particles were characterized using the following methods: dynamic light scattering, zeta potential, atomic force microscopy, in vitro cyto- and genotoxicity. In vivo organ distribution of all nanoparticles, retention in the lungs, and anticancer effects of liposomes loaded with doxorubicin were examined in nude mice after the pulmonary or intravenous delivery. RESULTS: Significant differences in lung uptake were found after the inhalation delivery of lipid-based and non-lipid-based nanoparticles. The accumulation of liposomes and micelles in lungs remained relatively high even 24 h after inhalation when compared with MSNs, QDs, and PPI dendrimers. There were notable differences between nanoparticle accumulation in the lungs and other organs 1 and 3 h after inhalation or intravenous administrations, but 24 h after intravenous injection all nanoparticles were mainly accumulated in the liver, kidneys, and spleen. Inhalation delivery of doxorubicin by liposomes significantly enhanced its anticancer effect and prevented severe adverse side effects of the treatment in mice bearing the orthotopic model of lung cancer. CONCLUSION: The results of the study demonstrate that lipid-based nanocarriers had considerably higher accumulation and longer retention time in the lungs when compared with non-lipid-based carriers after the inhalation delivery. These particles are most suitable for effective inhalation treatment of lung cancer.
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