PURPOSE: To evaluate the antitumor efficacy of solid lipid nanoparticle-encapsulated phospho-sulindac (SLN-PS) in human lung cancer. METHODS: PS was incorporated into SLNs using the emulsion evaporation technique. We determined the antitumor activity of SLN-PS in cultured lung cancer cells. The performance of SLN-PS was further evaluated by pharmacokinetic studies in mice and in a model of human lung cancer xenografts in nude mice. RESULTS: SLN-PS was >4-fold more potent than PS in inhibiting the growth of A549 and H510 cells in vitro. SLN-PS enhanced cellular uptake and facilitated PS accumulation in mitochondria, leading to oxidative stress and apoptosis via the mitochondrial-apoptosis pathway. SLN-PS was highly effective in suppressing the growth of A549 xenografts (78% inhibition compared to control, p < 0.01); while PS had no significant effect. Formulation of PS in SLNs resulted in improved pharmacokinetics in mice and an enhanced (≈ 14-fold) accumulation of PS and its metabolites in A549 xenografts. Finally, SLN-PS enhanced urinary F2-isoprostane uniquely in mice bearing A549 xenografts compared to untreated controls, suggesting that SLN-PS specifically induced oxidative stress in tumors. CONCLUSIONS: Our results show that SLN-PS is efficacious in suppressing the growth of lung cancer and merits further evaluation.
PURPOSE: To evaluate the antitumor efficacy of solid lipid nanoparticle-encapsulated phospho-sulindac (SLN-PS) in humanlung cancer. METHODS:PS was incorporated into SLNs using the emulsion evaporation technique. We determined the antitumor activity of SLN-PS in cultured lung cancer cells. The performance of SLN-PS was further evaluated by pharmacokinetic studies in mice and in a model of humanlung cancer xenografts in nude mice. RESULTS:SLN-PS was >4-fold more potent than PS in inhibiting the growth of A549 and H510 cells in vitro. SLN-PS enhanced cellular uptake and facilitated PS accumulation in mitochondria, leading to oxidative stress and apoptosis via the mitochondrial-apoptosis pathway. SLN-PS was highly effective in suppressing the growth of A549 xenografts (78% inhibition compared to control, p < 0.01); while PS had no significant effect. Formulation of PS in SLNs resulted in improved pharmacokinetics in mice and an enhanced (≈ 14-fold) accumulation of PS and its metabolites in A549 xenografts. Finally, SLN-PS enhanced urinary F2-isoprostane uniquely in mice bearing A549 xenografts compared to untreated controls, suggesting that SLN-PS specifically induced oxidative stress in tumors. CONCLUSIONS: Our results show that SLN-PS is efficacious in suppressing the growth of lung cancer and merits further evaluation.
Authors: Gian Paolo Zara; Roberta Cavalli; Alessandro Bargoni; Anna Fundarò; Daniela Vighetto; Maria Rosa Gasco Journal: J Drug Target Date: 2002-06 Impact factor: 5.121
Authors: Chi C Wong; Ka-Wing Cheng; Ioannis Papayannis; George Mattheolabakis; Liqun Huang; Gang Xie; Nengtai Ouyang; Basil Rigas Journal: Pharm Res Date: 2014-11-13 Impact factor: 4.200
Authors: Ka-Wing Cheng; Chi C Wong; George Mattheolabakis; Gang Xie; Liqun Huang; Basil Rigas Journal: Int J Oncol Date: 2013-06-27 Impact factor: 5.650