Hybridization-Sensitive Fluorescent Probes for DNA and RNA by a Modular “Click” Approach

Гибридизационно-чувствительные флуоресцентные зонды для ДНК и РНК, созданные модульным «click»-подходом
Julian Gebhard, Lara Hirsch, Christian Schwechheimer, Hans‐Achim Wagenknecht
2022-08-22

click post-synthetic modificationcyanine-styryl dyesenergy transfer with Cy3.5/Cy5/Atto590hybridization-sensitive fluorescent DNA probesthiazole orange derivatives
High Resolution Image Download MS PowerPoint Slide Fluorescent DNA probes were prepared in a modular approach using the “click” post-synthetic modification strategy. The new glycol-based module and DNA building block place just two carbons between the phosphodiester bridges and anchor the dye by an additional alkyne group. This creates a stereocenter in the middle of this artificial nucleoside substitute. Both enantiomers and a variety of photostable cyanine–styryl dyes as well as thiazole orange derivatives were screened as “clicked” conjugates in different surrounding DNA sequences. The combination of the ( S )-configured DNA anchor and the cyanylated cyanine–styryl dye shows the highest fluorescence light-up effect of 9.2 and a brightness of approximately 11,000 M –1 cm –1 . This hybridization sensitivity and fluorescence readout were further developed utilizing electron transfer and energy transfer processes. The combination of the hybridization-sensitive DNA building block with the nucleotide of 5-nitroindole as an electron acceptor and a quencher increases the light-up effect to 20 with the DNA target and to 15 with the RNA target. The fluorescence readout could significantly be enhanced to values between 50 and 360 by the use of energy transfer to a second DNA probe with commercially available dyes, like Cy3.5, Cy5, and Atto590, as energy acceptors at the 5′-end. The latter binary probes shift the fluorescent readout from the range of 500–550 nm to the range of 610–670 nm. The optical properties make these fluorescent DNA probes potentially useful for RNA imaging. Due to the strong light-up effect, they will not require washing procedures and will thus be suitable for live-cell imaging.
1
A modular post-synthetic 'click' approach produced fluorescent DNA probes using a glycol-based module with an alkyne-anchored dye and a stereocenter in the artificial nucleoside substitute.
2
Combining the hybridization-sensitive DNA building block with 5-nitroindole as an electron acceptor/quencher increased the light-up effect to 20 for DNA targets and to 15 for RNA targets via electron transfer quenching.
3
Screening of both enantiomers and various cyanine-styryl and thiazole orange dyes identified the (S)-configured DNA anchor combined with a cyanylated cyanine-styryl dye as giving the highest fluorescence light-up effect of 9.2 and brightness ~11,000 M^-1 cm^-1.
4
The probes' strong hybridization-sensitive light-up and shifted, bright emission make them potentially useful for wash-free live-cell RNA imaging.
5
Using energy transfer to a second DNA probe labeled with commercial acceptor dyes (Cy3.5, Cy5, Atto590) further enhanced fluorescence readout to between 50 and 360 and shifted emission from ~500–550 nm to ~610–670 nm.

Modularly synthesized hybridization-sensitive fluorescent DNA probes (clicked glycol-based nucleoside analogues conjugated to cyanine-styryl/thiazole orange dyes and energy-transfer acceptors)

Hybridization-sensitive fluorescence properties and fluorescence readout enhancement (light-up effect, brightness, electron-transfer quenching, and energy-transfer amplification) of the modified DNA probes when binding DNA and RNA targets

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2022-08-22
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Authors
Julian Gebhard
Lara Hirsch
Christian Schwechheimer
Hans‐Achim Wagenknecht
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