Enhancing Neuronal Cell Uptake of Therapeutic Nucleic Acids with Tetrahedral DNA Nanostructures

Author:

Martins Ana S. G.12ORCID,Reis Sara D.1,Benson Erik3ORCID,Domingues Marco M.4,Cortinhas João1,Vidal Silva Joana A.1,Santos Sofia D.1ORCID,Santos Nuno C.4,Pêgo Ana P.15ORCID,Moreno Pedro M. D.1ORCID

Affiliation:

1. i3S (Instituto de Investigação e Inovação em Saúde) Universidade do Porto INEB (Instituto Nacional de Engenharia Biomédica) Rua Alfredo Allen, 208 Porto 4200‐135 Portugal

2. Faculty of Engineering of the University of Porto Rua Dr. Roberto Frias, s/n Porto 4200‐465 Portugal

3. SciLifeLab Department of Microbiology Tumor and Cell Biology Tomtebodavägen 23 Solna 171 65 Sweden

4. Instituto de Medicina Molecular Faculdade de Medicina Universidade de Lisboa Av. Prof. Egas Moniz Lisbon 1649‐028 Portugal

5. Instituto de Ciências Biomédicas Abel Salazar da Universidade do Porto Rua de Jorge Viterbo Ferreira 228 Porto 4050‐313 Portugal

Abstract

AbstractThe successful translation of therapeutic nucleic acids (NAs) for the treatment of neurological disorders depends on their safe and efficient delivery to neural cells, in particular neurons. DNA nanostructures can be a promising NAs delivery vehicle. Nonetheless, the potential of DNA nanostructures for neuronal cell delivery of therapeutic NAs is unexplored. Here, tetrahedral DNA nanostructures (TDN) as siRNA delivery scaffolds to neuronal cells, exploring the influence of functionalization with two different reported neuronal targeting ligands: C4‐3 RNA aptamer and Tet1 peptide are investigated. Nanostructures are characterized in vitro, as well as in silico using molecular dynamic simulations to better understand the overall TDN structural stability. Enhancement of neuronal cell uptake of TDN functionalized with the C4‐3 Aptamer (TDN‐Apt), not only in neuronal cell lines but also in primary neuronal cell cultures is demonstrated. Additionally, TDN and TDN‐Apt nanostructures carrying siRNA are shown to promote silencing in a process aided by chloroquine‐induced endosomal disruption. This work presents a thorough workflow for the structural and functional characterization of the proposed TDN as a nano‐scaffold for neuronal delivery of therapeutic NAs and for targeting ligands evaluation, contributing to the future development of new neuronal drug delivery systems based on DNA nanostructures.

Funder

Fundação para a Ciência e a Tecnologia

Ministério da Ciência, Tecnologia e Ensino Superior

European Regional Development Fund

Publisher

Wiley

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