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评估用激活和未激活的聚酰胺-胺树枝状聚合物及其 DNA 复合物处理的 HeLa 癌细胞的基因表达谱。

Evaluating the gene-expression profiles of HeLa cancer cells treated with activated and nonactivated poly(amidoamine) dendrimers, and their DNA complexes.

机构信息

Graduate Institute of Pharmaceutical Science, Chia Nan University of Pharmacy and Science, 60 Erh-Jen Road, Sec. 1, Jen-Te, Tainan 717, Taiwan.

出版信息

Mol Pharm. 2010 Jun 7;7(3):805-14. doi: 10.1021/mp900303s.

DOI:10.1021/mp900303s
PMID:20394435
Abstract

Using dendrimers in cancer therapy as nonviral vectors for gene delivery seems promising. The biological performance of a dendrimer-based gene delivery system depends heavily on its molecular architecture. The transfection activity of dendrimers is significantly improved by processes activated in the heat degradation treatment of solvolysis. However, very little is known about the molecular mechanisms that dendrimers produce in cancer cells. We studied the changes in global gene-expression profiles in human cervical cancer HeLa cells exposed to nonactivated and activated poly(amidoamine) (PAMAM) dendrimers, alone or in complexes with plasmid DNA (dendriplexes). Real-time quantitative reverse transcriptase-polymerase chain reaction was used to confirm four regulated genes (PHF5A, ARNTL2, CHD4, and P2RX7) affected by activated dendrimers and dendriplexes. Activated and nonactivated dendrimers and dendriplexes alike induced multiple gene expression changes, some of which overlapped with their dendriplexes. Dendrimer activation improved transfection efficiency and induced additional gene expression changes in HeLa cells. Dendrimers and dendriplexes principally affect genes with the molecular functions of nucleic acid binding and transcription activity, metal-ion binding, enzyme activity, receptor activity, and protein binding. Our findings provide a deeper insight into the changes in gene expression patterns caused by the molecular structure of PAMAM dendrimers for gene-based cancer therapy.

摘要

使用树枝状聚合物作为非病毒载体进行基因传递在癌症治疗中似乎很有前景。基于树枝状聚合物的基因传递系统的生物学性能在很大程度上取决于其分子结构。树枝状聚合物的转染活性通过在溶剂解的热降解处理中激活的过程得到显著提高。然而,对于树枝状聚合物在癌细胞中产生的分子机制,我们知之甚少。我们研究了暴露于未激活和激活的聚(酰胺-胺)(PAMAM)树枝状聚合物、单独或与质粒 DNA 形成复合物(树枝状聚合物复合物)的人宫颈癌 HeLa 细胞中全局基因表达谱的变化。实时定量逆转录-聚合酶链反应用于确认受激活的树枝状聚合物和树枝状聚合物复合物影响的四个调节基因(PHF5A、ARNTL2、CHD4 和 P2RX7)。激活和未激活的树枝状聚合物和树枝状聚合物复合物都诱导了多个基因表达变化,其中一些与它们的树枝状聚合物复合物重叠。树枝状聚合物的激活提高了 HeLa 细胞的转染效率,并诱导了更多的基因表达变化。树枝状聚合物和树枝状聚合物复合物主要影响具有核酸结合和转录活性、金属离子结合、酶活性、受体活性和蛋白质结合等分子功能的基因。我们的研究结果为基于基因的癌症治疗中 PAMAM 树枝状聚合物的分子结构引起的基因表达模式变化提供了更深入的了解。

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