bioRxiv · 10.1101/2022.01.14.476363
Role of the circadian clock "Death-Loop" in the DNA damage response underpinning cancer treatment resistance
Abstract
The Circadian Clock (CC) drives the normal cell cycle and reciprocally regulates telomere elongation. However, it can be deregulated in cancer, embryonic stem cells (ESC), and the early embryo. Here, its role in the resistance of cancer cells to genotoxic treatments was assessed in relation to whole-genome duplication (WGD) and telomere regulation. We first evaluated the DNA damage response of polyploid cancer cells and observed a similar impact on the cell cycle to that seen in ESC - overcoming G1/S, adapting DNA damage checkpoints, tolerating DNA damage, and coupling telomere erosion to accelerated cell senescence, favouring transition by mitotic slippage into the ploidy cycle (reversible polyploidy). Next, we revealed a positive correlation between cancer WGD and deregulation of CC assessed by bioinformatics on 11 primary cancer datasets (rho=0.83; p<0.01). As previously shown, the cancer cells undergoing mitotic slippage cast off telomere fragments with TERT, restore the telomeres by recombination and return their depolyploidised mitotic offspring to TERT-dependent telomere regulation. Through depolyploidisation and the CC "death loop" the telomeres and Hayflick limit count are thus again renewed. This mechanism along with similar inactivity of the CC in early embryos support a life-cycle (embryonic) concept of cancer.
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Vainshelbaum, N. M., Salmina, K., Gerashchenko, B. I., Lazovska, M., Zayakin, P., Cragg, M. S., Pjanova, D., Erenpreisa, J.. 2022-01-15. Role of the circadian clock "Death-Loop" in the DNA damage response underpinning cancer treatment resistance. https://doi.org/10.1101/2022.01.14.476363
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