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Aptamers as Modular Components of Therapeutic Nucleic Acid Nanotechnology

Journal

ACS NANO
Volume 13, Issue 11, Pages 12301-12321

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.9b06522

Keywords

SELEX; aptamers; NANPs; therapeutic nucleic acids; immunotherapy; exosomes; RNA nanotechnology; nucleic acid delivery

Funding

  1. National Institute of General Medical Sciences of the National Institutes of Health [R01GM120487]
  2. MediPark, Kizigice-Phase II [ITMS2014+: 313011D103]
  3. Operational Programme Research and Development Programme - ERDF
  4. NEXO II (Network of Excellence in Oncology) [ITMS 26220120039]

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Nucleic acids play a central role in all domains of life, either as genetic blueprints or as regulators of various biochemical pathways. The chemical makeup of ribonucleic acid (RNA) or deoxyribonucleic acid (DNA), generally represented by a sequence of four monomers, also provides precise instructions for folding and higher-order assembly of these biopolymers that, in turn, dictate biological functions. The sequence-based specific 3D structures of nucleic acids led to the development of the directed evolution of oligonucleotides, SELEX (systematic evolution of ligands by exponential enrichment), against a chosen target molecule. Among the variety of functions, selected oligonucleotides named aptamers also allow targeting of cell-specific receptors with antibody-like precision and can deliver functional RNAs without a transfection agent. The advancements in the field of customizable nucleic acid nanoparticles (NANPs) opened avenues for the design of nanoassemblies utilizing aptamers for triggering or blocking cell signaling pathways or using aptamer-receptor combinations to activate therapeutic functionalities. A recent selection of fluorescent aptamers enables real-time tracking of NANP formation and interactions. The aptamers are anticipated to contribute to the future development of technologies, enabling an efficient assembly of functional NANPs in mammalian cells or in vivo. These research topics are of top importance for the field of therapeutic nucleic acid nanotechnology with the promises to scale up mass production of NANPs suitable for biomedical applications, to control the intracellular organization of biological materials to enhance the efficiency of biochemical pathways, and to enhance the therapeutic potential of NANP-based therapeutics while minimizing undesired side effects and toxicities.

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