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DNA 四面体形纳米笼作为一种有前途的纳米载体,用于在神经紊乱中递送多巴胺。

DNA tetrahedral nanocages as a promising nanocarrier for dopamine delivery in neurological disorders.

机构信息

Department of Biological Sciences and Engineering, Indian Institute of Technology, Gandhinagar, Gujrat, India.

Department of Physics, Indian Institute of Science, Bangalore, India.

出版信息

Nanoscale. 2024 Aug 15;16(32):15158-15169. doi: 10.1039/d4nr00612g.

DOI:10.1039/d4nr00612g
PMID:39091152
Abstract

Dopamine is a neurotransmitter in the central nervous system that is essential for many bodily and mental processes, and a lack of it can cause Parkinson's disease. DNA tetrahedral (TD) nanocages are promising in bio-nanotechnology, especially as a nanocarrier. TD is highly programmable, biocompatible, and capable of cell differentiation and proliferation. It also has tissue and blood-brain barrier permeability, making it a powerful tool that could overcome potential barriers in treating neurological disorders. In this study, we used DNA TD as a carrier for dopamine to cells and zebrafish embryos. We investigated the mechanism of complexation between TD and dopamine hydrochloride using gel electrophoresis, fluorescence and circular dichroism (CD) spectroscopy, atomic force microscopy (AFM), and molecular dynamic (MD) simulation tools. Further, we demonstrate that these dopamine-loaded DNA TD nanostructures enhanced cellular uptake and differentiation ability in SH-SY5Y neuroblastoma cells. Furthermore, we extended the study to zebrafish embryos as a model organism to examine survival and uptake. The research provides valuable insights into the complexation mechanism and cellular uptake of dopamine-loaded DNA tetrahedral nanostructures, paving the way for further advancements in nanomedicine for Parkinson's disease and other neurological disorders.

摘要

多巴胺是中枢神经系统中的一种神经递质,对许多身体和心理过程至关重要,缺乏多巴胺会导致帕金森病。DNA 四面体形(TD)纳米笼在生物纳米技术中很有前途,特别是作为纳米载体。TD 具有高度可编程性、生物相容性,能够进行细胞分化和增殖。它还具有组织和血脑屏障通透性,是一种强大的工具,可以克服治疗神经障碍的潜在障碍。在这项研究中,我们使用 DNA TD 作为多巴胺载体输送到细胞和斑马鱼胚胎中。我们使用凝胶电泳、荧光和圆二色性(CD)光谱、原子力显微镜(AFM)和分子动力学(MD)模拟工具研究了 TD 和盐酸多巴胺之间的复合物形成机制。此外,我们证明了这些负载多巴胺的 DNA TD 纳米结构增强了 SH-SY5Y 神经母细胞瘤细胞的细胞摄取和分化能力。此外,我们将研究扩展到斑马鱼胚胎作为模型生物,以检查其存活和摄取情况。该研究提供了对负载多巴胺的 DNA 四面体形纳米结构的复合物形成机制和细胞摄取的深入了解,为帕金森病和其他神经障碍的纳米医学进一步发展铺平了道路。

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