Abstract
DNA double-strand breaks (DSBs) are traditionally associated with cancer through their abilities to cause chromosomal instabilities or gene mutations. Here we report a new class of self-inflicted DNA DSBs that can drive tumor growth irrespective of their effects on genomic stability. We discover a mechanism through which cancer cells cause DSBs in their own genome spontaneously independent of reactive oxygen species or replication stress. In this mechanism, low-level cytochrome c leakage from the mitochondria leads to sublethal activation of apoptotic caspases and nucleases, which causes DNA DSBs. In response to these spontaneous DNA DSBs, ATM, a key factor involved in DNA damage response, is constitutively activated. Activated ATM leads to activation of transcription factors NF- B and STAT3, known drivers of tumor growth. Moreover, self-inflicted DNA DSB formation and ATM activation are important in sustaining the stemness of patient-derived glioma cells. In human tumor tissues, elevated levels of activated ATM correlate with poor patient survival. Self-inflicted DNA DSBs therefore are functionally important for maintaining the malignancy of cancer cells.
Author supplied keywords
Cite
CITATION STYLE
Liu, X., Li, F., Huang, Q., Zhang, Z., Zhou, L., Deng, Y., … Li, C. Y. (2017). Self-inflicted DNA double-strand breaks sustain tumorigenicity and stemness of cancer cells. Cell Research, 27(6), 764–783. https://doi.org/10.1038/cr.2017.41
Register to see more suggestions
Mendeley helps you to discover research relevant for your work.