Saccharomyces cerevisiae Proteins

Displaying 1 - 15 of 15CSV
Galanti, L., Peritore, M., Gnügge, R., Cannavo, E., Heipke, J., Palumbieri, M. D., Steigenberger, B., Symington, L. S., Cejka, P., & Pfander, B. (2024). Dbf4-dependent kinase promotes cell cycle controlled resection of DNA double-strand breaks and repair by homologous recombination. Nature Communications, 15(1). https://doi.org/10.1038/s41467-024-46951-z
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Meir, A., Raina, V. B., Rivera, C. E., Marie, L., Symington, L. S., & Greene, E. C. (2023). The separation pin distinguishes the pro– and anti–recombinogenic functions of Saccharomyces cerevisiae Srs2. Nature Communications, 14(1). https://doi.org/10.1038/s41467-023-43918-4
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Al-Zain, A. M., Nester, M. R., Ahmed, I., & Symington, L. S. (2023). Double-strand breaks induce inverted duplication chromosome rearrangements by a DNA polymerase δ-dependent mechanism. Nature Communications, 14(1). https://doi.org/10.1038/s41467-023-42640-5
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Gaspary, A., Laureau, R., Dyatel, A., Dursuk, G., Simon, Y., & Berchowitz, L. E. (2023). Rie1 and Sgn1 form an RNA-binding complex that enforces the meiotic entry cell fate decision. Journal of Cell Biology, 222(11). https://doi.org/10.1083/jcb.202302074
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Ottoz, D. S., Tang, L. C., Dyatel, A. E., Jovanovic, M., & Berchowitz, L. E. (2023). Assembly and function of the amyloid‐like translational repressor Rim4 is coupled with nutrient conditions. The EMBO Journal, 42(23). Portico. https://doi.org/10.15252/embj.2022113332
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Kimble, M. T., Johnson, M. J., Nester, M. R., & Symington, L. S. (2023). Long-range DNA end resection supports homologous recombination by checkpoint activation rather than extensive homology generation. ELife, 12. CLOCKSS. https://doi.org/10.7554/elife.84322
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Mustafi, M., Kwon, Y., Sung, P., & Greene, E. C. (2023). Single-molecule visualization of Pif1 helicase translocation on single-stranded DNA. Journal of Biological Chemistry, 299(6), 104817. https://doi.org/10.1016/j.jbc.2023.104817
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Gnügge, R., Reginato, G., Cejka, P., & Symington, L. S. (2023). Sequence and chromatin features guide DNA double-strand break resection initiation. Molecular Cell, 83(8), 1237-1250.e15. https://doi.org/10.1016/j.molcel.2023.02.010
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James, S. W., Palmer, J., Keller, N. P., Brown, M. L., Dunworth, M. R., Francisco, S. G., Watson, K. G., Titchen, B., Achimovich, A., Mahoney, A., Artemiou, J. P., Buettner, K. G., Class, M., Sydenstricker, A. L., & Anglin, S. L. (2022). A reciprocal translocation involving Aspergillus nidulans snxAHrb1/Gbp2 and gyfA uncovers a new regulator of the G2–M transition and reveals a role in transcriptional repression for the setBSet2 histone H3-lysine-36 methyltransferase. Genetics, 222(2). https://doi.org/10.1093/genetics/iyac130
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Columbia Affiliation
Choi, J., Kong, M., Gallagher, D. N., Li, K., Bronk, G., Cao, Y., Greene, E. C., & Haber, J. E. (2022). Repair of mismatched templates during Rad51-dependent Break-Induced Replication. PLOS Genetics, 18(9), e1010056. https://doi.org/10.1371/journal.pgen.1010056
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Herod, S. G., Dyatel, A., Hodapp, S., Jovanovic, M., & Berchowitz, L. E. (2022). Clearance of an amyloid-like translational repressor is governed by 14-3-3 proteins. Cell Reports, 39(5), 110753. https://doi.org/10.1016/j.celrep.2022.110753
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Gavade, J. N., Puccia, C. M., Herod, S. G., Trinidad, J. C., Berchowitz, L. E., & Lacefield, S. (2022). Identification of 14-3-3 proteins, Polo kinase, and RNA-binding protein Pes4 as key regulators of meiotic commitment in budding yeast. Current Biology, 32(7), 1534-1547.e9. https://doi.org/10.1016/j.cub.2022.02.022
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Rousová, D., Nivsarkar, V., Altmannova, V., Raina, V. B., Funk, S. K., Liedtke, D., Janning, P., Müller, F., Reichle, H., Vader, G., & Weir, J. R. (2021). Novel mechanistic insights into the role of Mer2 as the keystone of meiotic DNA break formation. ELife, 10. CLOCKSS. https://doi.org/10.7554/elife.72330
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