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Journal Abstract Search


199 related items for PubMed ID: 24452848

  • 1. Specific substrate recognition and thioester intermediate determinations in ubiquitin and SUMO conjugation cascades revealed by a high-sensitive FRET assay.
    Jiang L, Saavedra AN, Way G, Alanis J, Kung R, Li J, Xiang W, Liao J.
    Mol Biosyst; 2014 Apr; 10(4):778-86. PubMed ID: 24452848
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  • 4. Strategies to Trap Enzyme-Substrate Complexes that Mimic Michaelis Intermediates During E3-Mediated Ubiquitin-Like Protein Ligation.
    Streich FC, Lima CD.
    Methods Mol Biol; 2018 Apr; 1844():169-196. PubMed ID: 30242710
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  • 5. Biochemical characterization of SUMO-conjugating enzymes by in vitro sumoylation assays.
    Eisenhardt N, Ilic D, Nagamalleswari E, Pichler A.
    Methods Enzymol; 2019 Apr; 618():167-185. PubMed ID: 30850051
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  • 8. Domain alternation and active site remodeling are conserved structural features of ubiquitin E1.
    Lv Z, Yuan L, Atkison JH, Aldana-Masangkay G, Chen Y, Olsen SK.
    J Biol Chem; 2017 Jul 21; 292(29):12089-12099. PubMed ID: 28572513
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  • 9. A General in Vitro Assay for Studying Enzymatic Activities of the Ubiquitin System.
    Zuo Y, Chong BK, Jiang K, Finley D, Klenerman D, Ye Y.
    Biochemistry; 2020 Feb 25; 59(7):851-861. PubMed ID: 31951392
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  • 10. Structural basis for adenylation and thioester bond formation in the ubiquitin E1.
    Hann ZS, Ji C, Olsen SK, Lu X, Lux MC, Tan DS, Lima CD.
    Proc Natl Acad Sci U S A; 2019 Jul 30; 116(31):15475-15484. PubMed ID: 31235585
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  • 11. The basis for selective E1-E2 interactions in the ISG15 conjugation system.
    Durfee LA, Kelley ML, Huibregtse JM.
    J Biol Chem; 2008 Aug 29; 283(35):23895-902. PubMed ID: 18583345
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  • 12. SUMO-mimicking peptides inhibiting protein SUMOylation.
    Zhao B, Villhauer EB, Bhuripanyo K, Kiyokawa H, Schindelin H, Yin J.
    Chembiochem; 2014 Dec 15; 15(18):2662-6. PubMed ID: 25412743
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  • 13. Structural basis for transthiolation intermediates in the ubiquitin pathway.
    Kochańczyk T, Hann ZS, Lux MC, Delos Reyes AMV, Ji C, Tan DS, Lima CD.
    Nature; 2024 Sep 15; 633(8028):216-223. PubMed ID: 39143218
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  • 14. Dual-color pulse-chase ubiquitination assays to simultaneously monitor substrate priming and extension.
    Scott DC, Schulman BA.
    Methods Enzymol; 2019 Sep 15; 618():29-48. PubMed ID: 30850057
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  • 15. Twists and turns in ubiquitin-like protein conjugation cascades.
    Schulman BA.
    Protein Sci; 2011 Dec 15; 20(12):1941-54. PubMed ID: 22012881
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  • 16. Mechanism of E1-E2 interaction for the inhibition of Ubl adenylation.
    Wang J, Cai S, Chen Y.
    J Biol Chem; 2010 Oct 22; 285(43):33457-33462. PubMed ID: 20682785
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  • 17. A stable chemical SUMO1-Ubc9 conjugate specifically binds as a thioester mimic to the RanBP2-E3 ligase complex.
    Sommer S, Ritterhoff T, Melchior F, Mootz HD.
    Chembiochem; 2015 May 26; 16(8):1183-9. PubMed ID: 25917782
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  • 18. Designed semisynthetic protein inhibitors of Ub/Ubl E1 activating enzymes.
    Lu X, Olsen SK, Capili AD, Cisar JS, Lima CD, Tan DS.
    J Am Chem Soc; 2010 Feb 17; 132(6):1748-9. PubMed ID: 20099854
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  • 19. Robust high-throughput assays to assess discrete steps in ubiquitination and related cascades.
    Fenteany G, Gaur P, Sharma G, Pintér L, Kiss E, Haracska L.
    BMC Mol Cell Biol; 2020 Mar 30; 21(1):21. PubMed ID: 32228444
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  • 20. Binding to E1 and E3 is mutually exclusive for the human autophagy E2 Atg3.
    Qiu Y, Hofmann K, Coats JE, Schulman BA, Kaiser SE.
    Protein Sci; 2013 Dec 30; 22(12):1691-7. PubMed ID: 24186333
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