Controlled synthesis and size effects of multifunctional mesoporous silica nanosystem for precise cancer therapy

Drug Deliv. 2018 Nov;25(1):293-306. doi: 10.1080/10717544.2018.1425779.

Abstract

Nanomaterials-based drug delivery systems display potent applications in cancer therapy, owing to the enhanced permeability and retention effect and diversified chemical modification. In this study, we have tailored and synthesized different sized mesoporous silica nanoparticles (MSNs) through reactant control to investigate the relevancy of nanoparticle size toward anticancer efficacy and suppressing cancer multidrug resistance. The different sized MSNs loaded with anticancer ruthenium complex (RuPOP) and conjugated with folate acid (FA) to enhance the selectivity between cancer and normal cells. The nanosystem (Ru@MSNs) can specifically recognize HepG2 hepatocellular carcinoma cells, thus enhance accumulation and selective cellular uptake. The smaller sized (20 nm) Ru@MSNs exhibit higher anticancer activity against HepG2 cells, while the larger sized (80 nm) Ru@MSNs exhibit higher inhibitory effect against DOX-resistant hepatocellular carcinoma cells (R-HepG2). Moreover, Ru@MSNs induced ROS overproduction in cancer cells, leading to DNA damage and p53 phosphorylation, consequently promoting cancer cells apoptosis. Ru@MSNs (80 nm) also inhibited ABCB1 and ABCG2 expression in R-HepG2 cells to prevent drug efflux, thus overcome multidrug resistance. Ru@MSNs also inhibited tumor growth in vivo without obvious toxicity in major organs of tumor-bearing nude mice. Taken together, these results verify the size effects of MSNs nanosystem for precise cancer therapy.

Keywords: Size effect; anticancer; mesoporous silica nanosystem; multidrug resistance.

MeSH terms

  • Animals
  • Antineoplastic Agents / administration & dosage
  • Antineoplastic Agents / chemistry*
  • Apoptosis / drug effects
  • Cell Line
  • Cell Line, Tumor
  • DNA Damage / drug effects
  • Doxorubicin / administration & dosage
  • Doxorubicin / chemistry
  • Drug Carriers / chemistry
  • Drug Delivery Systems / methods
  • Drug Resistance, Multiple / drug effects
  • Drug Resistance, Neoplasm / drug effects
  • Folic Acid / chemistry
  • Hep G2 Cells
  • Humans
  • Mice
  • Mice, Nude
  • Nanoparticles / chemistry*
  • Particle Size
  • Permeability / drug effects
  • Porosity
  • Precision Medicine / methods
  • Ruthenium / administration & dosage
  • Ruthenium / chemistry
  • Silicon Dioxide / chemistry*

Substances

  • Antineoplastic Agents
  • Drug Carriers
  • Silicon Dioxide
  • Ruthenium
  • Doxorubicin
  • Folic Acid

Grants and funding

This work was supported by National High-level personnel of special support program (2014189), YangFan Innovative & Entepreneurial Research Team Project (201312H05), Natural Science Foundation of China (21701051), Natural Science Foundation of Guangdong Province (2017A030313051), China Postdoctoral Science Foundation (2016M600705), Fundamental Research Funds for the Central Universities and Guangdong Frontier Key Technological Innovation Special Funds.