Defining the Design Parameters for Enzyme Delivery Through Protein Spherical Nucleic Acids
Overview
Affiliations
The translation of proteins as effective intracellular drug candidates is limited by the challenge of cellular entry and their vulnerability to degradation. To advance their therapeutic potential, cell-impermeable proteins can be readily transformed into protein spherical nucleic acids (ProSNAs) by densely functionalizing their surfaces with DNA, yielding structures that are efficiently taken up by cells. Because small structural changes in the chemical makeup of a conjugated ligand can affect the bioactivity of the associated protein, structure-activity relationships of the linker bridging the DNA and the protein surface and the DNA sequence itself are investigated on the ProSNA system. In terms of attachment chemistry, DNA-based linkers promote a sevenfold increase in cellular uptake while maintaining enzymatic activity as opposed to hexaethylene glycol (HEG, Spacer18) linkers. Additionally, the employment of G-quadruplex-forming sequences increases cellular uptake up to fourfold. When translating to murine models, the ProSNA with a DNA-only shell exhibits increased blood circulation times and higher accumulation in major organs, including lung, kidney, and spleen, regardless of sequence. Importantly, ProSNAs with an all-oligonucleotide shell retain their enzymatic activity in tissue, whereas the native protein loses all function. Taken together, these results highlight the value of structural design in guiding ProSNA biological fate and activity and represent a significant step forward in the development of intracellular protein-based therapeutics.
DNA Dendron Tagging as a Universal Way to Deliver Proteins to Cells.
Ngo K, Distler M, Evangelopoulos M, Ocampo T, Ma Y, Minorik A J Am Chem Soc. 2025; 147(2):2129-2136.
PMID: 39812088 PMC: 11755410. DOI: 10.1021/jacs.4c16205.
Recent advances in gene delivery nanoplatforms based on spherical nucleic acids.
Valatabar N, Oroojalian F, Kazemzadeh M, Mokhtarzadeh A, Safaralizadeh R, Sahebkar A J Nanobiotechnology. 2024; 22(1):386.
PMID: 38951806 PMC: 11218236. DOI: 10.1186/s12951-024-02648-5.
Intracellular Delivery of Functional Proteins with DNA-Protein Nanogels-Lipids Complex.
Mariconti M, Dechamboux L, Heckmann M, Gros J, Morel M, Escriou V J Am Chem Soc. 2024; 146(8):5118-5127.
PMID: 38363821 PMC: 10910493. DOI: 10.1021/jacs.3c08000.
Imaging of [60]Fullerene-Based Molecular Spherical Nucleic Acids by Positron Emission Tomography.
Aarela A, Auchynnikava T, Moisio O, Liljenback H, Andriana P, Iqbal I Mol Pharm. 2023; 20(10):5043-5051.
PMID: 37531591 PMC: 10548468. DOI: 10.1021/acs.molpharmaceut.3c00370.
Smart Nanocarriers for the Targeted Delivery of Therapeutic Nucleic Acid for Cancer Immunotherapy.
Baker A, Lorch J, VanderWeele D, Zhang B Pharmaceutics. 2023; 15(6).
PMID: 37376190 PMC: 10302359. DOI: 10.3390/pharmaceutics15061743.