Molecular Genetics of the Ubiquitin System
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Publisher
Springer US
Link
http://link.springer.com/content/pdf/10.1007/978-1-4899-2049-2_3
Reference82 articles.
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3. Ciechanover, A., Finley, D., and Varshavsky, A., 1984, Ubiquitin dependence of selective protein degradation demonstrated in the mammalian cell cycle mutant ts85, Cell 37: 57–66.
4. Özkaynak, E., Finley, D., and Varshavsky, A., 1984, The yeast ubiquitin gene: Head-to-tail repeats encoding a polyubiquitin precursor protein, Nature 312: 663–666.
5. Dworkin-Rastl, E., Shrutkowski, A., and Dworkin, M. B., 1984, Multiple ubiquitin mRNAs during Xenopus laevis development contain tandem repeats of the 76 amino acid coding sequence, Cell 39: 321–325.
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1. Heat Shock Response and Protein Degradation: Regulation of HSF2 by the Ubiquitin-Proteasome Pathway;Molecular and Cellular Biology;1998-09
2. Isolation and characterization of tomato cDNA and genomic clones encoding the ubiquitin gene ubi3;Plant Molecular Biology;1991-12
3. Ubiquitin in a lower plant. Characterization of ubiquitin-encoding DNA and RNA from Chlamydomonas reinhardii;European Journal of Biochemistry;1991-11
4. Proteolytic activity during senescence of plants;New Phytologist;1990-10
5. The yeast STE6 gene encodes a homologue of the mammalian multidrug resistance P-glycoprotein;Nature;1989-08
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