Geometry of a DNA nanostructure influences its endocytosis: cellular study on 2D, 3D, and in vivo systems

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dc.contributor.author Rajwar, Anjali
dc.contributor.author Shetty, Shravani Reddy
dc.contributor.author Vaswani, Payal
dc.contributor.author Morya, Vinod
dc.contributor.author Barai, Amlan
dc.contributor.author Sen, Shamik
dc.contributor.author Sonawane, Mahendra
dc.contributor.author Bhatia, Dhiraj
dc.coverage.spatial United States of America
dc.date.accessioned 2022-06-29T12:39:33Z
dc.date.available 2022-06-29T12:39:33Z
dc.date.issued 2022-06
dc.identifier.citation Rajwar, Anjali; Shetty, Shravani Reddy; Vaswani, Payal; Morya, Vinod; Barai, Amlan; Sen, Shamik; Sonawane, Mahendra and Bhatia, Dhiraj, "Geometry of a DNA nanostructure influences its endocytosis: cellular study on 2D, 3D, and in vivo systems", ACS Nano, DOI: 10.1021/acsnano.2c01382, Jun. 2022. en_US
dc.identifier.issn 1936-0851
dc.identifier.issn 1936-086X
dc.identifier.uri https://doi.org/10.1021/acsnano.2c01382
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/7840
dc.description.abstract Fabrication of nanoscale DNA devices to generate 3D nano-objects with precise control of shape, size, and presentation of ligands has shown tremendous potential for therapeutic applications. The interactions between the cell membrane and different topologies of 3D DNA nanostructures are crucial for designing efficient tools for interfacing DNA devices with biological systems. The practical applications of these DNA nanocages are still limited in cellular and biological systems owing to the limited understanding of their interaction with the cell membrane and endocytic pathway. The correlation between the geometry of DNA nanostructures and their internalization efficiency remains elusive. We investigated the influence of the shape and size of 3D DNA nanostructures on their cellular internalization efficiency. We found that one particular geometry, i.e., the tetrahedral shape, is more favored over other designed geometries for their cellular uptake in 2D and 3D cell models. This is also replicable for cellular processes like cell invasion assays in a 3D spheroid model, and passing the epithelial barriers in in vivo zebrafish model systems. Our work provides detailed information for the rational design of DNA nanodevices for their upcoming biological and biomedical applications.
dc.description.statementofresponsibility by Anjali Rajwar, Shravani Reddy Shetty, Payal Vaswani, Vinod Morya, Amlan Barai, Shamik Sen, Mahendra Sonawane and Dhiraj Bhatia
dc.language.iso en_US en_US
dc.publisher American Chemical Society en_US
dc.subject Endocytosis en_US
dc.subject DNA nanostructure en_US
dc.subject Geometry en_US
dc.subject Tetrahedron en_US
dc.subject 3D spheroid en_US
dc.title Geometry of a DNA nanostructure influences its endocytosis: cellular study on 2D, 3D, and in vivo systems en_US
dc.type Article en_US
dc.relation.journal ACS Nano


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