Author
Listed:
- Pavlína Víšková
(Masaryk University
Masaryk University)
- Eva Ištvánková
(Masaryk University
Masaryk University)
- Jan Ryneš
(Masaryk University)
- Šimon Džatko
(Masaryk University
Slovak Academy of Sciences)
- Tomáš Loja
(Masaryk University)
- Martina Lenarčič Živković
(Masaryk University
National Institute of Chemistry)
- Riccardo Rigo
(Masaryk University
University of Padova)
- Roberto El-Khoury
(McGill University)
- Israel Serrano-Chacón
(CSIC)
- Masad J. Damha
(McGill University)
- Carlos González
(CSIC)
- Jean-Louis Mergny
(Czech Academy of Sciences
Institut Polytechnique de Paris, Inserm, CNRS, Ecole Polytechnique)
- Silvie Foldynová-Trantírková
(Masaryk University
Czech Academy of Sciences)
- Lukáš Trantírek
(Masaryk University)
Abstract
I-Motifs (iM) are non-canonical DNA structures potentially forming in the accessible, single-stranded, cytosine-rich genomic regions with regulatory roles. Chromatin, protein interactions, and intracellular properties seem to govern iM formation at sites with i-motif formation propensity (iMFPS) in human cells, yet their specific contributions remain unclear. Using in-cell NMR with oligonucleotide iMFPS models, we monitor iM-associated structural equilibria in asynchronous and cell cycle-synchronized HeLa cells at 37 °C. Our findings show that iMFPS displaying pHT 7 appear as a mix of folded and unfolded states depending on the cell cycle phase. Comparing these results with previous data obtained using an iM-specific antibody (iMab) reveals that cell cycle-dependent iM formation has a dual origin, and iM formation concerns only a tiny fraction (possibly 1%) of genomic sites with iM formation propensity. We propose a comprehensive model aligning observations from iMab and in-cell NMR and enabling the identification of iMFPS capable of adopting iM structures under physiological conditions in living human cells. Our results suggest that many iMFPS may have biological roles linked to their unfolded states.
Suggested Citation
Pavlína Víšková & Eva Ištvánková & Jan Ryneš & Šimon Džatko & Tomáš Loja & Martina Lenarčič Živković & Riccardo Rigo & Roberto El-Khoury & Israel Serrano-Chacón & Masad J. Damha & Carlos González & Je, 2024.
"In-cell NMR suggests that DNA i-motif levels are strongly depleted in living human cells,"
Nature Communications, Nature, vol. 15(1), pages 1-12, December.
Handle:
RePEc:nat:natcom:v:15:y:2024:i:1:d:10.1038_s41467-024-46221-y
DOI: 10.1038/s41467-024-46221-y
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