4.8 Article

Light-induced in situ chemical activation of a fluorescent probe for monitoring intracellular G-quadruplex structures

期刊

NANOSCALE
卷 13, 期 32, 页码 13795-13808

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1nr02855c

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资金

  1. National Microscopy Infrastructure [VR-RFI 2016-00968]
  2. fond recherche of the Ecole Normale Superieure de Lyon
  3. Knut and Alice Wallenberg Foundation [KAW2015-0189]
  4. Cancerfonden [2019/126]
  5. Swedish Research Council [VR-MH 2018-02651]
  6. MIMS Excellence by Choice Postdoctoral Programme
  7. NCN Opus grant [UMO-2019/35/B/ST4/03280]
  8. SYSPROD project
  9. AXELERA Pole de Competitivite

向作者/读者索取更多资源

The study introduces a light-activated functional material capable of remotely controlling the formation of duplex and G-quadruplex nucleic acids at the cellular level, along with a novel extended heteroaromatic structure with remarkable binding properties. This work lays the groundwork for the future design and development of a new generation of light-activated target-selective G4-binders.
Light-activated functional materials capable of remote control over duplex and G-quadruplex (G4) nucleic acids formation at the cellular level are still very rare. Herein, we report on the photoinduced macrocyclisation of a helicenoid quinoline derivative of binaphthol that selectively provides easy access to an unprecedented class of extended heteroaromatic structures with remarkable photophysical and DNA/RNA binding properties. Thus, while the native bisquinoline precursor shows no DNA binding activity, the new in situ photochemically generated probe features high association constants to DNA and RNA G4s. The latter inhibits DNA synthesis by selectively stabilizing G4 structures associated with oncogenic promoters and telomere repeat units. Finally, the light sensitive compound is capable of in cellulo photoconversion, localizes primarily in the G4-rich sites of cancer cells, competes with a well-known G4 binder and shows a clear nuclear co-localization with the quadruplex specific antibody BG4. This work provides a benchmark for the future design and development of a brand-new generation of light-activated target-selective G4-binders.

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