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Intrinsically Fluorescent Carbon Nanospheres as a Nuclear Targeting Vector: Delivery of Membrane-Impermeable Molecule to Modulate Gene Expression In Vivo

机译:本征荧光碳纳米球作为核靶向载体:膜不透性分子的传递,以调节体内基因表达。

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In this report, we demonstrate glucose-derived carbon nanospheres(1) to be an emerging class of intracellular carriers. The surfaces of these spheres are highly functionalized and do not need any further modification. Besides, the intrinsic fluorescence property of carbon nanospheres helps in tracking their cellular localization without any additional fluorescent tags. The spheres are found to target the nucleus of the mammalian cells, causing no toxicity. Interestingly, the in vivo experiments show that these nanospheres have an important ability to cross the blood-brain barrier and localize in the brain besides getting localized in the liver and the spleen. There is also evidence to show that they are continuously being removed from these tissues over time. Furthermore, these nanospheres were used as a carrier for the membrane-impermeable molecule CTPB (N-(4-chloro-3-trifluoromethylphenyl)-2-ethoxybenzamide), the only known small-molecule activator of histone acetyltransferase (HAT) p300.(2) Biochemical analyses such as Western blotting, immunohistochemistry, and gene expression analysis show the induction of the hyperacetylation of histone acetyltransferase (HAT) p300 (autoacetylation) as well as histones both in vitro and in vivo and the activation of HAT-dependent transcription upon CTPB delivery. These results establish an alternative path for the activation of gene expression mediated by the induction of HAT activity instead of histone deacetylase (HDAC) inhibition.
机译:在本报告中,我们证明了葡萄糖衍生的碳纳米球(1)是一类新兴的细胞内载体。这些球的表面高度功能化,不需要任何进一步的修改。此外,碳纳米球的固有荧光特性有助于跟踪其细胞定位,而无需任何其他荧光标记。发现这些球靶向哺乳动物细胞的核,没有引起毒性。有趣的是,体内实验表明,这些纳米球除了能够定位在肝脏和脾脏之外,还具有穿越血脑屏障和定位于大脑的重要能力。也有证据表明,随着时间的推移,它们会不断从这些组织中去除。此外,这些纳米球还用作不可渗透膜的分子CTPB(N-(4-氯-3-三氟甲基苯基)-2-乙氧基苯甲酰胺)的载体,CTPB是唯一已知的组蛋白乙酰转移酶(HAT)p300的小分子活化剂。 2)生化分析,例如蛋白质印迹,免疫组化和基因表达分析,显示了组蛋白乙酰转移酶(HAT)p300(自体乙酰化)的超乙酰化以及体内和体外组蛋白的诱导以及HAT依赖性转录的激活CTPB交付。这些结果为通过激活HAT活性而不是抑制组蛋白脱乙酰基酶(HDAC)介导的基因表达建立了一条替代途径。

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