Fluorescent dye labeling of DNA oligonucleotides and nanostructures is one of the most used techniques to track their fate and cellular localization inside cells. Here, we report that intracellular fluorescence, and even FRET signals, cannot be correlated with the cellular uptake of intact DNA structures. Live cell imaging revealed high colocalization of cyanine-labeled DNA oligos and nanostructures with phosphorylated small-molecule cyanine dyes, one of the degradation products from these DNA compounds. Nuclease degradation of the strands outside and inside the cell results in a misleading intracellular fluorescent signal. The signal is saturated by the fluorescence of the degradation product (phosphorylated dye). To test our hypothesis, w...
From gene expression to nanotechnology, understanding and controlling DNA requires a detailed knowle...
DNA network structures are used as a material with versatile uses and applications. Spherical nanost...
Recent innovations in DNA nanofabrication allow the creation of intricately shaped nanostructures id...
Fluorescent dye labeling of DNA oligonucleotides and nanostructures is one of the most used techniqu...
DNA-based nanostructures have received great attention as molecular vehicles for cellular delivery o...
No two genetically-identical human cells are exactly the same. In the last decade, in vivo studies h...
No two genetically-identical human cells are exactly the same. In the last decade, in vivo studies h...
DNA nanotechnology holds the potential for enabling new tools for biomedical engineering, including ...
none2noIn the last decade, in vivo studies have revealed that even subtle differences in size, conce...
Short single-stranded oligonucleotides represent a class of promising therapeutics with diverse appl...
In the last decade, in vivo studies have revealed that even subtle differences in size, concentratio...
DNA, while best known for its coding abilities, can also be used as a structural material to form na...
DNA nanopores offer a unique nano-scale foothold at the membrane interface that can help advance the...
For monitoring the intracellular pathway of small interfering RNA (siRNA), both strands were labelle...
From gene expression to nanotechnology, understanding and controlling DNA requires a detailed knowle...
DNA network structures are used as a material with versatile uses and applications. Spherical nanost...
Recent innovations in DNA nanofabrication allow the creation of intricately shaped nanostructures id...
Fluorescent dye labeling of DNA oligonucleotides and nanostructures is one of the most used techniqu...
DNA-based nanostructures have received great attention as molecular vehicles for cellular delivery o...
No two genetically-identical human cells are exactly the same. In the last decade, in vivo studies h...
No two genetically-identical human cells are exactly the same. In the last decade, in vivo studies h...
DNA nanotechnology holds the potential for enabling new tools for biomedical engineering, including ...
none2noIn the last decade, in vivo studies have revealed that even subtle differences in size, conce...
Short single-stranded oligonucleotides represent a class of promising therapeutics with diverse appl...
In the last decade, in vivo studies have revealed that even subtle differences in size, concentratio...
DNA, while best known for its coding abilities, can also be used as a structural material to form na...
DNA nanopores offer a unique nano-scale foothold at the membrane interface that can help advance the...
For monitoring the intracellular pathway of small interfering RNA (siRNA), both strands were labelle...
From gene expression to nanotechnology, understanding and controlling DNA requires a detailed knowle...
DNA network structures are used as a material with versatile uses and applications. Spherical nanost...
Recent innovations in DNA nanofabrication allow the creation of intricately shaped nanostructures id...