bioRxiv · 10.1101/2021.05.11.443558
Elongation factor ELOF1 drives transcription-coupled repair and prevents genome instability
Abstract
Correct transcription is crucial for life. However, DNA damage severely impedes elongating RNA Polymerase II (Pol II), causing transcription inhibition and transcription-replication conflicts. Cells are equipped with intricate mechanisms to counteract the severe consequence of these transcription-blocking lesions (TBLs). However, the exact mechanism and factors involved remain largely unknown. Here, using a genome-wide CRISPR/cas9 screen, we identified elongation factor ELOF1 as an important new factor in the transcription stress response upon DNA damage. We show that ELOF1 has an evolutionary conserved role in Transcription-Coupled Nucleotide Excision Repair (TC-NER), where it promotes recruitment of the TC-NER factors UVSSA and TFIIH to efficiently repair TBLs and resume transcription. Additionally, ELOF1 modulates transcription to protect cells from transcription-mediated replication stress, thereby preserving genome stability. Thus, ELOF1 protects the transcription machinery from DNA damage by two distinct mechanisms.
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Geijer, M., Zhou, D., Selvam, K., Steurer, B., Evers, B., Mukherjee, C., Cugusi, S., van Toorn, M., van der Woude, M., Gong, W., Janssens, R., Raams, A., Lebbink, J., Geverts, B., Plummer, D., Bezstarosti, K., Theil, A., Mitter, R., Houtsmuller, A., Vermeulen, W., Demmers, J., Li, S., Lans, H., Bernards, R., Svejstrup, J., Ray Chaudhuri, A., Wyrick, J., Marteijn, J.. 2021-05-11. Elongation factor ELOF1 drives transcription-coupled repair and prevents genome instability. https://doi.org/10.1101/2021.05.11.443558
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