p53 regulation by ubiquitin and ubiquitin-like modifications
Author:
Funder
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Subject
General Medicine
Link
https://link.springer.com/content/pdf/10.1007/s42764-022-00067-0.pdf
Reference216 articles.
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2. Aichem, A., Kalveram, B., Spinnenhirn, V., Kluge, K., Catone, N., Johansen, T., & Groettrup, M. (2012). The proteomic analysis of endogenous FAT10 substrates identifies p62/SQSTM1 as a substrate of FAT10ylation. Journal of Cell Science, 125(Pt 19), 4576–4585. https://doi.org/10.1242/jcs.107789
3. Ashikari, D., Takayama, K., Tanaka, T., Suzuki, Y., Obinata, D., Fujimura, T., Urano, T., Takahashi, S., & Inoue, S. Androgen induces G3BP2 and SUMO-mediated p53 nuclear export in prostate cancer. Oncogene, 36(45), 6272–6281. https://doi.org/10.1038/onc.2017.225
4. Becker, J., Barysch, S. V., Karaca, S., Dittner, C., Hsiao, H. H., Berriel Diaz, M., Herzig, S., Urlaub, H., & Melchior, F. (2013). Detecting endogenous SUMO targets in mammalian cells and tissues. Nature Structural & Molecular Biology, 20(4), 525–531. https://doi.org/10.1038/nsmb.2526
5. Brandl, A., Wagner, T., Uhlig, K. M., Knauer, S. K., Stauber, R. H., Melchior, F., Schneider, G., Heinzel, T., & Kramer, O. H. (2012). Dynamically regulated sumoylation of HDAC2 controls p53 deacetylation and restricts apoptosis following genotoxic stress. Journal of Molecular Cell Biology, 4(5), 284–293. https://doi.org/10.1093/jmcb/mjs013
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