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Preparation of novel (-)-gossypol nanoparticles and the effect on growth inhibition in human prostate cancer PC-3 cells in vitro

机译:新型(-)-棉酚纳米粒的制备及其对人前列腺癌PC-3细胞生长的抑制作用

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摘要

The aim of the present study was to investigate the antitumor effects and possible mechanism of (-)-gossypol nanoparticles, loaded with vv polyethylene glycol-maleimide (mPEG-Mal), in vitro. Emulsification-volatilization was used to prepare the loaded (-)-gossypol nanoparticles. The toxicity of blank nanoparticles on human prostate cancer PC-3 cells and human prostate RWPE-1 cells was measured. The antitumor effects of the nanoparticles on PC-3 cells were evaluated by an MTT assay, acridine orange staining and transmission electron microscopy in vitro, and the results were compared with those of free (-)-gossypol. In addition, the mRNA expression levels of Bcl-2 and Bak were measured using semi-quantitative reverse transcription polymerase chain reaction. The growth inhibition activity of the loaded (-)-gossypol nanoparticles was found to be dose- and time-dependent, and similar to the activity of free (-)-gossypol. The nanoparticles induced apoptotic morphological changes on the PC-3 cells, downregulating the mRNA expression level of Bcl-2 and upregulating the mRNA expression level of Bak. Blank nanoparticles exhibited no evident toxicity on PC-3 and RWPE-1 cells at a high dose. Therefore, the mPEG-Mal loaded (-)-gossypol nanoparticles demonstrated a favorable antitumor activity and no toxicity. The nanoparticles were able to induce the apoptosis of prostate cancer cells; thus, may be a potential antitumor nanodrug.
机译:本研究的目的是在体外研究负载vv聚乙二醇-马来酰亚胺(mPEG-Mal)的(-)-棉酚纳米颗粒的抗肿瘤作用及其可能的机制。乳化-挥发用于制备负载的(-)-棉酚纳米颗粒。测量了空白纳米颗粒对人前列腺癌PC-3细胞和人前列腺RWPE-1细胞的毒性。通过MTT试验,a啶橙染色和透射电镜对纳米颗粒对PC-3细胞的抗肿瘤作用进行了体外评估,并将结果与​​游离(-)-棉酚进行了比较。另外,使用半定量逆转录聚合酶链反应测量Bcl-2和Bak的mRNA表达水平。发现负载的(-)-棉酚纳米颗粒的生长抑制活性是剂量和时间依赖性的,并且类似于游离的(-)-棉酚的活性。纳米粒子诱导PC-3细胞凋亡的形态变化,下调Bcl-2的mRNA表达水平,上调Bak的mRNA表达水平。空白纳米颗粒在高剂量下对PC-3和RWPE-1细胞没有明显的毒性。因此,载有mPEG-Mal的(-)-棉酚纳米颗粒具有良好的抗肿瘤活性且无毒性。纳米粒子能够诱导前列腺癌细胞的凋亡。因此,可能是潜在的抗肿瘤纳米药物。

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