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  • Author: Hildebrandt ER
  • References

Author: Hildebrandt ER


References 20 references


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  • Hildebrandt ER, et al. (2024) Evaluating protein prenylation of human and viral CaaX sequences using a humanized yeast system. Dis Model Mech 17(5) PMID:38818856
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  • Sarkar A, et al. (2024) Comprehensive analysis of CXXX sequence space reveals that Saccharomyces cerevisiae GGTase-I mainly relies on a2X substrate determinants. G3 (Bethesda) 14(8) PMID:38839053
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  • Schey GL, et al. (2024) Library Screening, In Vivo Confirmation, and Structural and Bioinformatic Analysis of Pentapeptide Sequences as Substrates for Protein Farnesyltransferase. Int J Mol Sci 25(10) PMID:38791363
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  • Kim JH, et al. (2023) A comprehensive in vivo screen of yeast farnesyltransferase activity reveals broad reactivity across a majority of CXXX sequences. G3 (Bethesda) 13(7) PMID:37119806
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  • Ravishankar R, et al. (2023) Specific Disruption of Ras2 CAAX Proteolysis Alters Its Localization and Function. Microbiol Spectr 11(1):e0269222 PMID:36602340
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  • Berger BM, et al. (2022) Functional classification and validation of yeast prenylation motifs using machine learning and genetic reporters. PLoS One 17(6):e0270128 PMID:35749383
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  • Schey GL, et al. (2021) MALDI-MS Analysis of Peptide Libraries Expands the Scope of Substrates for Farnesyltransferase. Int J Mol Sci 22(21) PMID:34769472
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  • Berger BM, et al. (2018) Protein Isoprenylation in Yeast Targets COOH-Terminal Sequences Not Adhering to the CaaX Consensus. Genetics 210(4):1301-1316 PMID:30257935
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  • Blanden MJ, et al. (2018) Efficient farnesylation of an extended C-terminal C(x)3X sequence motif expands the scope of the prenylated proteome. J Biol Chem 293(8):2770-2785 PMID:29282289
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  • Hildebrandt ER, et al. (2016) A shunt pathway limits the CaaX processing of Hsp40 Ydj1p and regulates Ydj1p-dependent phenotypes. Elife 5 PMID:27525482
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  • Hildebrandt ER, et al. (2016) Ste24p Mediates Proteolysis of Both Isoprenylated and Non-prenylated Oligopeptides. J Biol Chem 291(27):14185-14198 PMID:27129777
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  • Hildebrandt ER, et al. (2013) Topology of the yeast Ras converting enzyme as inferred from cysteine accessibility studies. Biochemistry 52(38):6601-14 PMID:23972033
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  • Dechert AM, et al. (2010) Modulation of the inhibitor properties of dipeptidyl (acyloxy)methyl ketones toward the CaaX proteases. Bioorg Med Chem 18(17):6230-7 PMID:20696584
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  • Manandhar SP, et al. (2010) Chemical inhibition of CaaX protease activity disrupts yeast Ras localization. Yeast 27(6):327-43 PMID:20162532
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  • Manandhar SP, et al. (2007) Small-molecule inhibitors of the Rce1p CaaX protease. J Biomol Screen 12(7):983-93 PMID:17942791
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  • Porter SB, et al. (2007) Inhibition of the CaaX proteases Rce1p and Ste24p by peptidyl (acyloxy)methyl ketones. Biochim Biophys Acta 1773(6):853-62 PMID:17467817
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  • Hildebrandt ER, et al. (2006) Homotetrameric form of Cin8p, a Saccharomyces cerevisiae kinesin-5 motor, is essential for its in vivo function. J Biol Chem 281(36):26004-13 PMID:16829678
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  • Plummer LJ, et al. (2006) Mutational analysis of the ras converting enzyme reveals a requirement for glutamate and histidine residues. J Biol Chem 281(8):4596-605 PMID:16361710
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  • Hildebrandt ER and Hoyt MA (2001) Cell cycle-dependent degradation of the Saccharomyces cerevisiae spindle motor Cin8p requires APC(Cdh1) and a bipartite destruction sequence. Mol Biol Cell 12(11):3402-16 PMID:11694576
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  • Hildebrandt ER and Hoyt MA (2000) Mitotic motors in Saccharomyces cerevisiae. Biochim Biophys Acta 1496(1):99-116 PMID:10722880
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