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  1. 1.   Requirement for the budding yeast polo kinase Cdc5 in proper microtubule growth and dynamics
  2. Park, C. J.; Park, J. E.; Karpova, T. S.; Soung, N. K.; Yu, L. R.; Song, S.; Lee, K. H.; Xia, X.; Kang, E.; Dabanoglu, I.; Oh, D. Y.; Zhang, J. Y.; Kang, Y. H.; Wincovitch, S.; Huffaker, T. C.; Veenstra, T. D.; McNally, J. G.; Lee, K. S.
  3. Eukaryotic Cell. 2008 7(3): 444-453.
  1. 2.   Picolinic acid- or desferrioxamine-inducible autocrine activation of macrophages engineered to produce IFN gamma: an approach for gene therapy
  2. Pastorino, S.; Carta, L.; Puppo, M.; Melillo, G.; Bosco, M. C.; Varesio, L.
  3. Gene Therapy. 2004 11(6): 560-568.
  1. 3.   CAK1 promotes meiosis and spore formation in Saccharomyces cerevisiae in a CDC28-independent fashion
  2. Schaber, M.; Lindgren, A.; Schindler, K.; Bungard, D.; Kaldis, P.; Winter, E.
  3. Molecular and Cellular Biology. 2002 22(1): 57-68.
  1. 4.   Utilization of Microhomologous Recombination in Yeast to Generate Targeting Constructs For Mammalian Genes
  2. Khrebtukova, I.; Michaud, E. J.; Foster, C. M.; Stark, K. L.; Garfinkel, D. J.; Woychik, R. P.
  3. Mutation Research - Fundamental & Molecular Mechanisms of Mutagenesis. 1998 401(1-2): 11-25.
  1. 5.   Reconstitution of the Nf-Kappa-B System in Saccharomyces Cerevisiae For Isolation of Effectors By Phenotype Modulation
  2. Epinat, J. C.; Whiteside, S. T.; Rice, N. R.; Israel, A.
  3. Yeast. 1997 13(7): 599-612.
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