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Nucleic Acids Research|February 26, 2005
Oxidative damage in telomeric DNA disrupts recognition by TRF1 and TRF2Patricia L Opresko, Jinshui Fan, Shamika Danzy, et al.
Aging|June 4, 2010
Cooperation of DNA-PKcs and WRN helicase in the maintenance of telomeric D-loopsRika Kusumoto-Matsuo, Patricia L Opresko, Dale Ramsden, et al.
Nucleic Acids Research|October 6, 2017
Molecular mechanisms by which oxidative DNA damage promotes telomerase activityHui-Ting Lee, Arindam Bose, Chun-Ying Lee, et al.
Biorxiv : the Preprint Server for Biology|April 24, 2023
OGG1 and MUTYH repair activities promote telomeric 8-oxoguanine induced cellular senescenceMariarosaria De Rosa, Ryan P Barnes, Prasanth R Nyalapatla, et al.
Cell Cycle (Georgetown, Tex.)|February 17, 2012
Telomere proteins POT1, TRF1 and TRF2 augment long-patch base excision repair in vitroAdam S Miller, Lata Balakrishnan, Noah A Buncher, et al.
Journal of Visualized Experiments : Jove|July 18, 2017
Modified Terminal Restriction Fragment Analysis for Quantifying Telomere Length Using In-gel HybridizationFrank J Jenkins, Charles M Kerr, Elise Fouquerel, et al.
Annals of Biomedical Engineering|May 1, 1995
Molecular/cell engineering approach to autocrine ligand control of cell functionD A Lauffenburger, K E Forsten, B Will, et al.
The Journal of Biological Chemistry|May 10, 1985
Intracellular processing of epidermal growth factor and its effect on ligand-receptor interactionsH S Wiley, W VanNostrand, D N McKinley, et al.
Proceedings of the National Academy of Sciences of the United States of America|December 23, 1998
Real-time quantitative measurement of autocrine ligand binding indicates that autocrine loops are spatially localizedD A Lauffenburger, G T Oehrtman, L Walker, et al.
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