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  • Author: Mohammed S
  • References

Author: Mohammed S


References 14 references


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  • Kilchert C, et al. (2020) System-wide analyses of the fission yeast poly(A)+ RNA interactome reveal insights into organization and function of RNA-protein complexes. Genome Res 30(7):1012-1026 PMID:32554781
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  • Lebesgue N, et al. (2017) Combining Deep Sequencing, Proteomics, Phosphoproteomics, and Functional Screens To Discover Novel Regulators of Sphingolipid Homeostasis. J Proteome Res 16(2):571-582 PMID:28152593
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  • Beilsten-Edmands V, et al. (2015) eIF2 interactions with initiator tRNA and eIF2B are regulated by post-translational modifications and conformational dynamics. Cell Discov 1:15020 PMID:27462419
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  • Binai NA, et al. (2014) Proteome adaptation of Saccharomyces cerevisiae to severe calorie restriction in Retentostat cultures. J Proteome Res 13(8):3542-53 PMID:25000127
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  • Mellacheruvu D, et al. (2013) The CRAPome: a contaminant repository for affinity purification-mass spectrometry data. Nat Methods 10(8):730-6 PMID:23921808
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  • Peng M, et al. (2012) Protease bias in absolute protein quantitation. Nat Methods 9(6):524-5 PMID:22669647
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  • Helbig AO, et al. (2010) Perturbation of the yeast N-acetyltransferase NatB induces elevation of protein phosphorylation levels. BMC Genomics 11:685 PMID:21126336
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  • Helbig AO, et al. (2010) Profiling of N-acetylated protein termini provides in-depth insights into the N-terminal nature of the proteome. Mol Cell Proteomics 9(5):928-39 PMID:20061308
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  • Lau NC, et al. (2010) Phosphorylation of Not4p functions parallel to BUR2 to regulate resistance to cellular stresses in Saccharomyces cerevisiae. PLoS One 5(4):e9864 PMID:20386698
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  • Helbig AO, et al. (2009) A three-way proteomics strategy allows differential analysis of yeast mitochondrial membrane protein complexes under anaerobic and aerobic conditions. Proteomics 9(20):4787-98 PMID:19750512
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  • Mohammed S, et al. (2008) Multiplexed proteomics mapping of yeast RNA polymerase II and III allows near-complete sequence coverage and reveals several novel phosphorylation sites. Anal Chem 80(10):3584-92 PMID:18416563
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  • Synowsky SA, et al. (2006) Probing genuine strong interactions and post-translational modifications in the heterogeneous yeast exosome protein complex. Mol Cell Proteomics 5(9):1581-92 PMID:16829593
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  • Gruhler A, et al. (2005) Quantitative phosphoproteomics applied to the yeast pheromone signaling pathway. Mol Cell Proteomics 4(3):310-27 PMID:15665377
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  • Castrillo JI, et al. (2003) An optimized protocol for metabolome analysis in yeast using direct infusion electrospray mass spectrometry. Phytochemistry 62(6):929-37 PMID:12590120
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