CAS Key Laboratory of Health Informatics, Institute of Biomedicine and Biotechnology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen, 518055, People's Republic of China.
ACS Nano. 2012 Jan 24;6(1):689-95. doi: 10.1021/nn204162y. Epub 2011 Dec 29.
DNA-templated semiconductor nanocrystal (SNC) growth represents a facile means to generate bioactive hybrid nanostructures by directly integrating DNA molecules and luminescent SNCs together via a one-step synthesis, which has been applied to biosensing and cell imaging. In this study we for the first time demonstrated that DNA-templated CdS SNC growth could also be used to rationally tune the structures and activities of large DNA molecules. We explored the synergistic effects of nanocrystal growth on the sizes and charges of DNA molecules and demonstrate that the CdS growth-induced DNA packing could be used as a smart gene delivery system. Herein we used DNA plasmids encoding intact enhanced green fluorescence protein (EGFP) genes as templates to grow CdS SNCs and found that the stepwise growth of CdS nanocrystals can spontaneously induce DNA condensation and negative charge shielding in a synergistic manner. The condensed DNA plasmids exhibited efficient cellular uptake and a relative gene transfection efficiency of 32%. The transfection efficiency can be further doubled in the presence of chloroquine. We elucidated that the gene transfection and expression is controlled by reversible DNA packing, where ligand exchange of DNA with intracellular glutathione molecules plays a critical role in the recovery of DNA plasmids for gene expression.
DNA 模板半导体纳米晶体(SNC)的生长代表了一种通过一步合成将 DNA 分子和发光 SNC 直接集成在一起生成生物活性杂化纳米结构的简便方法,该方法已应用于生物传感和细胞成像。在这项研究中,我们首次证明 DNA 模板 CdS SNC 的生长也可用于合理调节大 DNA 分子的结构和活性。我们探讨了纳米晶体生长对 DNA 分子大小和电荷的协同作用,并证明 CdS 生长诱导的 DNA 包装可用作智能基因传递系统。在这里,我们使用编码完整增强型绿色荧光蛋白(EGFP)基因的 DNA 质粒作为模板来生长 CdS SNC,并发现 CdS 纳米晶体的逐步生长可以协同自发地诱导 DNA 凝聚和负电荷屏蔽。凝聚的 DNA 质粒表现出有效的细胞摄取和相对 32%的基因转染效率。在氯喹存在下,转染效率可进一步提高一倍。我们阐明了基因转染和表达受可逆 DNA 包装控制,其中 DNA 与细胞内谷胱甘肽分子的配体交换在恢复 DNA 质粒进行基因表达方面起着关键作用。