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bioRxiv · 10.1101/2024.06.03.597143

Reduced non-specific binding of super-resolution DNA-PAINT markers by Shielded DNA-PAINT labeling protocols

Abstract

The DNA-based single molecule super-resolution imaging approach, DNA-PAINT, can achieve nanometer resolution of single targets. However, the approach can suffer from significant non-specific background signals originating from non-specifically bound DNA-conjugated DNA-PAINT secondary antibodies as shown here. Using dye-modified oligonucleotides the location of DNA-PAINT secondary antibody probes can easily be observed with widefield imaging prior to beginning a super-resolution measurement. This reveals that a substantial proportion of DNA probes can accumulate, non-specifically, within the nucleus, as well as across the cytoplasm, of cells. Here, Shielded DNA-PAINT labeling is introduced, a method using partially or fully double-stranded docking strand sequences, prior to labeling, in buffers with increased ionic strength to greatly reduce non-specific interactions in the nucleus as well as the cytoplasm. This new labeling approach is evaluated against various conditions and it is shown that applying Shielded DNA-PAINT can reduce non-specific events [~]5 fold within the nucleus. This marked reduction in non-specific binding of probes during the labeling procedure is comparable to results obtained with unnatural left-handed DNA albeit at a fraction of the cost. Shielded DNA-PAINT is a straightforward adaption of current DNA-PAINT protocols and enables nanometer precision imaging of nuclear targets with low non-specific background.

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BibTeXRIS

Lucinskaite, E., Bokhobza, A. F. E., Stannard, A., Meletiou, A., Estell, C., West, S., Di Michele, L., Soeller, C., Clowsley, A. H.. 2024-06-04. Reduced non-specific binding of super-resolution DNA-PAINT markers by Shielded DNA-PAINT labeling protocols. https://doi.org/10.1101/2024.06.03.597143

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