Saccharomyces cerevisiae ASN1 and ASN2 are asparagine synthetase paralogs that have diverged in their ability to polymerize in response to nutrient stress
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[1] N. Krogan,et al. Protein Moonlighting Revealed by Noncatalytic Phenotypes of Yeast Enzymes , 2017, Genetics.
[2] Asan,et al. Diaphragmatic Eventration in Sisters with Asparagine Synthetase Deficiency: A Novel Homozygous ASNS Mutation and Expanded Phenotype. , 2016, JIMD reports.
[3] Peng Wang,et al. Filamentation of Metabolic Enzymes in Saccharomyces cerevisiae , 2016, Journal of genetics and genomics = Yi chuan xue bao.
[4] A. Shiau,et al. Common regulatory control of CTP synthase enzyme activity and filament formation , 2014, Molecular biology of the cell.
[5] Brian K. Sato,et al. Identification of novel filament-forming proteins in Saccharomyces cerevisiae and Drosophila melanogaster , 2010, The Journal of cell biology.
[6] G. Jensen,et al. The metabolic enzyme CTP synthase forms cytoskeletal filaments , 2010, Nature Cell Biology.
[7] Ji-Long Liu. Intracellular compartmentation of CTP synthase in Drosophila. , 2010, Journal of genetics and genomics = Yi chuan xue bao.
[8] Andrew D. Ellington,et al. Widespread reorganization of metabolic enzymes into reversible assemblies upon nutrient starvation , 2009, Proceedings of the National Academy of Sciences.
[9] Nigel G J Richards,et al. Asparagine synthetase chemotherapy. , 2006, Annual review of biochemistry.
[10] E. O’Shea,et al. Global analysis of protein localization in budding yeast , 2003, Nature.
[11] M. R. Adams,et al. Comparative genomics of the eukaryotes. , 2000, Science.
[12] S. Schuster,et al. Three-dimensional structure of Escherichia coli asparagine synthetase B: a short journey from substrate to product. , 1999, Biochemistry.
[13] T. Nakatsu,et al. Crystal structure of asparagine synthetase reveals a close evolutionary relationship to class II aminoacyl-tRNA synthetase , 1998, Nature Structural Biology.
[14] S. Schuster,et al. Mutagenesis and Chemical Rescue Indicate Residues Involved in β-Aspartyl-AMP Formation by Escherichia coli Asparagine Synthetase B* , 1997, The Journal of Biological Chemistry.
[15] S. Schuster,et al. Glutamine-dependent nitrogen transfer in Escherichia coli asparagine synthetase B. Searching for the catalytic triad. , 1994, The Journal of biological chemistry.
[16] S. Schuster,et al. Glutamine inhibits the ammonia-dependent activities of two Cys-1 mutants of human asparagine synthetase through the formation of an abortive complex. , 1993, Journal of Biological Chemistry.
[17] S. Schuster,et al. The N-terminal cysteine of human asparagine synthetase is essential for glutamine-dependent activity. , 1989, The Journal of biological chemistry.
[18] H. Kay,et al. L-Asparaginase in Treatment of Acute Leukaemia and Lymphosarcoma , 1970, British medical journal.
[19] E. Chan,et al. Molecular cell biology and immunobiology of mammalian rod/ring structures. , 2014, International review of cell and molecular biology.
[20] Nigel G. J. Richards,et al. Mechanistic issues in asparagine synthetase catalysis. , 1998, Advances in enzymology and related areas of molecular biology.