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

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dc.contributor.author Singh, Ramesh
dc.contributor.author Kansara, Krupa
dc.contributor.author Yadav, Pankaj
dc.contributor.author Mandal, Sandip
dc.contributor.author Varshney, Ritu
dc.contributor.author Gupta, Sharad
dc.contributor.author Kumar, Ashutosh
dc.contributor.author Maiti, Prabal K.
dc.contributor.author Bhatia, Dhiraj
dc.coverage.spatial United Kingdom
dc.date.accessioned 2024-08-14T13:17:23Z
dc.date.available 2024-08-14T13:17:23Z
dc.date.issued 2027-07
dc.identifier.citation Singh, Ramesh; Kansara, Krupa; Yadav, Pankaj; Mandal, Sandip; Varshney, Ritu; Gupta, Sharad; Kumar, Ashutosh; Maiti, Prabal K. and Bhatia, Dhiraj, "DNA tetrahedral nanocages as a promising nanocarrier for dopamine delivery in neurological disorders", Nanoscale, DOI: 10.1039/D4NR00612G, Jul. 2024.
dc.identifier.issn 2040-3364
dc.identifier.issn 2040-3372
dc.identifier.uri https://doi.org/10.1039/D4NR00612G
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/10335
dc.description.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.
dc.description.statementofresponsibility by Ramesh Singh, Krupa Kansara, Pankaj Yadav, Sandip Mandal, Ritu Varshney, Sharad Gupta, Ashutosh Kumar, Prabal K. Maiti and Dhiraj Bhatia
dc.language.iso en_US
dc.publisher Royal Society of Chemistry
dc.title DNA tetrahedral nanocages as a promising nanocarrier for dopamine delivery in neurological disorders
dc.type Article
dc.relation.journal Nanoscale


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