bioRxiv · 10.1101/2020.11.06.360685
Recurrent chromosomal imbalances provide selective advantage to human embryonic stem cells under enhanced replicative stress conditions
Abstract
Human embryonic stem cells (hESCs) and embryonal tumors share a number of common features including a compromised G1/S checkpoint. Consequently, these rapidly dividing hESCs and cancer cells undergo elevated levels of replicative stress which is known to induce genomic instability causing chromosomal imbalances. In this context, it is of interest that long-term in vitro cultured hESCs exhibit a remarkable high incidence of segmental DNA copy number gains, some of which are also highly recurrent in certain malignancies such as 17q gain (17q+). The selective advantage of DNA copy number changes in these cells has been attributed to several underlying processes including enhanced proliferation. We hypothesized that these recurrent chromosomal imbalances become rapidly embedded in the cultured hESCs through a replicative stress driven Darwinian selection process. To this end, we compared the effect of hydroxyurea induced replicative stress versus normal growth conditions in an equally-mixed cell population of isogenic euploid and 17q+ hESCs. We could show that 17q+ hESCs rapidly overtook normal hESCs. Our data suggest that recurrent chromosomal segmental gains provide a proliferative advantage to hESCs under increased replicative stress, a process that may also explain the highly recurrent nature of certain imbalances in cancer.
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Mus, L. M., Van Haver, S., Popovic, M., Trypsteen, W., Lefever, S., Zeltner, N., Ogando, Y., Jacobs, E. Z., Denecker, G., Sanders, E., Van Neste, C., Vanhauwaert, S., Decaesteker, B., Deforce, D., Van Nieuwerburgh, F., Mestdagh, P., Vandesompele, J., Menten, B., De Preter, K., Studer, L., Heindryckx, B., Durinck, K., Roberts, S., Speleman, F.. 2020-11-08. Recurrent chromosomal imbalances provide selective advantage to human embryonic stem cells under enhanced replicative stress conditions. https://doi.org/10.1101/2020.11.06.360685
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