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Cell Growth and Development

Septin-Dependent Assembly of a Cell Cycle-Regulatory Module in Saccharomyces cerevisiae

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Pages 4049-4061 | Received 22 Dec 1999, Accepted 15 Mar 2000, Published online: 28 Mar 2023

REFERENCES

  • Adams, A. E. M., and Pringle, J. R.. 1984. Relationship of actin and tubulin distribution to bud growth in wild-type and morphogenetic-mutant Saccharomyces cerevisiae. J. Cell Biol. 98:934–945
  • Altman, R., and Kellogg, D.. 1997. Control of mitotic events by Nap1 and the Gin4 kinase. J. Cell Biol. 138:119–130
  • Ausubel, F. M., Brent, R., Kingston, R. E., Moore, D. D., Seidman, J. G., Smith, J. A., and Struhl, K.. 1995. Current protocols in molecular biology. John Wiley and Sons, New York, N.Y
  • Ayscough, K. R., Stryker, J., Pokala, N., Sanders, M., Crews, P., and Drubin, D. G.. 1997. High rates of actin filament turnover in budding yeast and roles for actin in establishment and maintenance of cell polarity revealed using the actin inhibitor latrunculin-A. J. Cell Biol. 137:399–416
  • Bagrodia, S., and Cerione, R. A.. 1999. Pak to the future. Trends Cell Biol. 9:350–355
  • Barral, Y., Parra, M., Bidlingmaier, S., and Snyder, M.. 1999. Nim1-related kinases coordinate cell cycle progression with the organization of the peripheral cytoskeleton in yeast. Genes Dev. 13:176–187
  • Baudin, A., Ozier-Kalogeropoulos, O., Denouel, A., Lacroute, F., and Cullin, C.. 1993. A simple and efficient method for direct gene deletion in Saccharomyces cerevisiae. Nucleic Acids Res. 21:3329–3330
  • Benton, B. K., Tinkelenberg, A., Gonzalez, I., and Cross, F. R.. 1997. Cla4p, a Saccharomyces cerevisiae Cdc42p-activated kinase involved in cytokinesis, is activated at mitosis. Mol. Cell. Biol. 17:5067–5076
  • Bi, E., Maddox, P., Lew, D. J., Salmon, E. D., McMillan, J. N., Yeh, E., and Pringle, J. R.. 1998. Involvement of an actomyosin contractile ring in Saccharomyces cerevisiae cytokinesis. J. Cell Biol. 142:1301–1312
  • Bi, E., and Pringle, J. R.. 1996. ZDS1 and ZDS2, genes whose products may regulate Cdc42p in Saccharomyces cerevisiae. Mol. Cell. Biol. 16:5264–5275
  • Booher, R. N., Deshaies, R. J., and Kirschner, M. W.. 1993. Properties of Saccharomyces cerevisiae wee1 and its differential regulation of p34CDC28 in response to G1 and G2 cyclins. EMBO J. 12:3417–3426
  • Breeding, C. S., Hudson, J., Balasubramanian, M. K., Hemmingsen, S. M., Young, P. G., and Gould, K. L.. 1998. The cdr2+ gene encodes a regulator of G2/M progression and cytokinesis in Schizosaccharomyces pombe. Mol. Biol. Cell 9:3399–3415
  • Carroll, C. W., Altman, R., Schieltz, D., Yates, J. R.III, and Kellogg, D.. 1998. The septins are required for the mitosis-specific activation of the Gin4 kinase. J. Cell Biol. 143:709–717
  • Chant, J., Mischke, M., Mitchell, E., Herskowitz, I., and Pringle, J. R.. 1995. Role of Bud3p in producing the axial budding pattern of yeast. J. Cell Biol. 129:767–778
  • Coleman, T. R., Tang, Z., and Dunphy, W. G.. 1993. Negative regulation of the Wee1 protein kinase by direct action of the nim1/cdr1 mitotic inducer. Cell 72:919–929
  • Cvrčková, F., De Virgilio, C., Manser, E., Pringle, J. R., and Nasmyth, K.. 1995. Ste20-like protein kinases are required for normal localization of cell growth and for cytokinesis in budding yeast. Genes Dev. 9:1817–1830
  • DeMarini, D. J., Adams, A. E. M., Fares, H., De Virgilio, C., Valle, G., Chuang, J. S., and Pringle, J. R.. 1997. A septin-based hierarchy of proteins required for localized deposition of chitin in the Saccharomyces cerevisiae cell wall. J. Cell Biol. 139:75–93
  • Epp, J. A., and Chant, J.. 1997. An IQGAP-related protein controls actin-ring formation and cytokinesis in yeast. Curr. Biol. 7:921–929
  • Farkaš, V., Kovařik, J., Košinová, A., and Bauer, Š.. 1974. Autoradiographic study of mannan incorporation into the growing cell walls of Saccharomyces cerevisiae. J. Bacteriol. 117:265–269
  • Ford, S. K., and Pringle, J. R.. 1991. Cellular morphogenesis in the Saccharomyces cerevisiae cell cycle: localization of the CDC11 gene product and the timing of events at the budding site. Dev. Genet. 12:281–292
  • Frazier, J. A., Wong, M. L., Longtine, M. S., Pringle, J. R., Mann, M., Mitchison, T. J., and Field, C.. 1998. Polymerization of purified yeast septins: evidence that organized filament arrays may not be required for septin function. J. Cell Biol. 143:737–749
  • Gietz, D., St. Jean, A., Woods, R. A., and Schiestl, R. H.. 1992. Improved method for high efficiency transformation of intact yeast cells. Nucleic Acids Res. 20: 1425
  • Gietz, R. D., and Sugino, A.. 1988. New yeast-Escherichia coli shuttle vectors constructed with in vitro mutagenized yeast genes lacking six base pair restriction sites. Gene 74:527–534
  • Guthrie, C., and Fink, G. R.. Methods in enzymology, vol. 194. Guide to yeast genetics and molecular biology. Academic Press, Inc., San Diego, Calif
  • Haarer, B. K., and Pringle, J. R.. 1987. 1991. Immunofluorescence localization of the Saccharomyces cerevisiae CDC12 gene product to the vicinity of the 10-nm filaments in the mother-bud neck. Mol. Cell. Biol. 7:3678–3687
  • Hartwell, L. H.. 1971. Genetic control of the cell division cycle in yeast. IV. Genes controlling bud emergence and cytokinesis. Exp. Cell Res. 69:265–276
  • Hunter, T., and Plowman, G. D.. 1997. The protein kinases of budding yeast: six score and more. Trends Biochem. Sci. 22:18–22
  • Kaiser, P., Sia, R. A. L., Bardes, E. G. S., Lew, D. J., and Reed, S. I.. 1998. Cdc34 and the F-box protein Met30 are required for degradation of the Cdk-inhibitory kinase Swe1. Genes Dev. 12:2587–2597
  • Kanoh, J., and Russell, P.. 1998. The protein kinase Cdr2, related to Nim1/Cdr1 mitotic inducer, regulates the onset of mitosis in fission yeast. Mol. Biol. Cell 9:3321–3334
  • Kellogg, D. R., and Murray, A. W.. 1995. NAP1 acts with Clb2 to perform mitotic functions and to suppress polar bud growth in budding yeast. J. Cell Biol. 130:675–685
  • Kim, H. B., Haarer, B. K., and Pringle, J. R.. 1991. Cellular morphogenesis in the Saccharomyces cerevisiae cell cycle: localization of the CDC3 gene product and the timing of events at the budding site. J. Cell Biol. 112:535–544
  • Laemmli, U. K.. 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227:680–685
  • Lew, D. J., and Reed, S. I.. 1995. A cell cycle checkpoint monitors cell morphogenesis in budding yeast. J. Cell Biol. 129:739–749
  • Lew, D. J., and Reed, S. I.. 1993. Morphogenesis in the yeast cell cycle: regulation by Cdc28 and cyclins. J. Cell Biol. 120:1305–1320
  • Lew, D. J., Weinert, T., and Pringle, J. R.. 1997. Cell cycle control in Saccharomyces cerevisiae The molecular and cellular biology of the yeast Saccharomyces. Cell cycle and cell biology. Pringle, J. R., Broach, J. R., and Jones, E. W. 607–695 Cold Spring Harbor Laboratory Press, Cold Spring Harbor, N.Y
  • Lillie, S. H., and Brown, S. S.. 1994. Immunofluorescence localization of the unconventional myosin, Myo2p, and the putative kinesin-related protein, Smy1p, to the same regions of polarized growth in Saccharomyces cerevisiae. J. Cell Biol. 125:825–842
  • Lillie, S. H., and Pringle, J. R.. 1980. Reserve carbohydrate metabolism in Saccharomyces cerevisiae: responses to nutrient limitation. J. Bacteriol. 143:1384–1394
  • Lippincott, J., and Li, R.. 1998. Sequential assembly of myosin II, an IQGAP-like protein, and filamentous actin to a ring structure involved in budding yeast cytokinesis. J. Cell Biol. 140:355–366
  • Longtine, M. S., DeMarini, D. J., Valencik, M. L., Al-Awar, O. S., Fares, H., De Virgilio, C., and Pringle, J. R.. 1996. The septins: roles in cytokinesis and other processes. Curr. Opin. Cell Biol. 8:106–119
  • Longtine, M. S., Fares, H., and Pringle, J. R.. 1998. Role of the yeast Gin4p protein kinase in septin assembly and the relationship between septin assembly and septin function. J. Cell Biol. 143:719–736
  • Longtine, M. S., McKenzie, A.III, DeMarini, D. J., Shah, N. G., Wach, A., Brachat, A., Philippsen, P., and Pringle, J. R.. 1998. Additional modules for versatile and economical PCR-based gene deletion and modification in Saccharomyces cerevisiae. Yeast 14:953–961
  • Longtine, M. S., and Pringle, J. R.. 1999. Septins Guidebook to the cytoskeletal and motor proteins. Kreis, T., and Vale, R. 359–363 Oxford University Press, Oxford, England
  • Ma, X.-J., Lu, Q., and Grunstein, M.. 1996. A search for proteins that interact genetically with histone H3 and H4 amino termini uncovers novel regulators of the Swe1 kinase in Saccharomyces cerevisiae. Genes Dev. 10:1327–1340
  • McMillan, J. N., Longtine, M. S., Sia, R. A., Theesfeld, C. L., Bardes, E. S., Pringle, J. R., and Lew, D. J.. 1999. The morphogenesis checkpoint in Saccharomyces cerevisiae: cell cycle control of Swe1p degradation by Hsl1p and Hsl7p. Mol. Cell. Biol. 19:6929–6939
  • McMillan, J. N., Sia, R. A. L., Bardes, E. S. G., and Lew, D. J.. 1999. Phosphorylation-independent inhibition of Cdc28p by the tyrosine kinase Swe1p in the morphogenesis checkpoint. Mol. Cell. Biol. 19:5981–5990
  • McMillan, J. N., Sia, R. A. L., and Lew, D. J.. 1998. A morphogenesis checkpoint monitors the actin cytoskeleton in yeast. J. Cell Biol. 142:1487–1499
  • Morgan, D. O.. 1995. Principles of CDK regulation. Nature 374:131–134
  • Okuzaki, D., Tanaka, S., Kanazawa, H., and Nojima, H.. 1997. Gin4 of S. cerevisiae is a bud neck protein that interacts with the Cdc28 complex. Genes Cells 2:753–770
  • Parker, L. L., Walter, S. A., Young, P. G., and Piwnica-Worms, H.. 1993. Phosphorylation and inactivation of the mitotic inhibitor Wee1 by the nim1/cdr1 kinase. Nature 363:736–738
  • Pringle, J. R.. 1991. Staining of bud scars and other cell wall chitin with Calcofluor. Methods Enzymol. 194:732–735
  • Pringle, J. R., Adams, A. E. M., Drubin, D. G., and Haarer, B. K.. 1991. Immunofluorescence methods for yeast. Methods Enzymol. 194:565–602
  • Pringle, J. R., and Mor, J.-R.. 1975. Methods for monitoring the growth of yeast cultures and for dealing with the clumping problem. Methods Cell Biol. 11:131–168
  • Richardson, H. E., Wittenberg, C., Cross, F., and Reed, S. I.. 1989. An essential G1 function for cyclin-like proteins in yeast. Cell 59:1127–1133
  • Russell, P., Moreno, S., and Reed, S. I.. 1989. Conservation of mitotic controls in fission and budding yeast. Cell 57:295–303
  • Russell, P., and Nurse, P.. 1987. The mitotic inducer nim1+ functions in a regulatory network of protein kinase homologs controlling the initiation of mitosis. Cell 49:569–576
  • Sanders, S. L., and Herskowitz, I.. 1996. The Bud4 protein of yeast, required for axial budding, is localized to the mother/bud neck in a cell cycle-dependent manner. J. Cell Biol. 134:413–427
  • Shou, W., Seol, J. H., Shevchenko, A., Baskerville, C., Moazed, D., Chen, Z. W., Jang, J., Charbonneau, H., and Deshaies, R. J.. 1999. Exit from mitosis is triggered by Tem1-dependent release of the protein phosphatase Cdc14 from nucleolar RENT complex. Cell 97:233–244
  • Shulewitz, M. J., Inouye, C. J., and Thorner, J.. 1999. Hsl7 localizes to a septin ring and serves as an adapter in a regulatory pathway that relieves tyrosine phosphorylation of Cdc28 protein kinase in Saccharomyces cerevisiae. Mol. Cell. Biol. 19:7123–7137
  • Sia, R. A. L., Bardes, E. S. G., and Lew, D. J.. 1998. Control of Swe1p degradation by the morphogenesis checkpoint. EMBO J. 17:6678–6688
  • Sia, R. A. L., Herald, H. A., and Lew, D. J.. 1996. Cdc28 tyrosine phosphorylation and the morphogenesis checkpoint in budding yeast. Mol. Biol. Cell 7:1657–1666
  • Sikorski, R. S., and Hieter, P.. 1989. A system of shuttle vectors and yeast host strains designed for efficient manipulation of DNA in Saccharomyces cerevisiae. Genetics 122:19–27
  • Tjandra, H., Compton, J., and Kellogg, D.. 1998. Control of mitotic events by the Cdc42 GTPase, the Clb2 cyclin and a member of the PAK kinase family. Curr. Biol. 8:991–1000
  • Visintin, R., Hwang, E. S., and Amon, A.. 1999. Cfi1 prevents premature exit from mitosis by anchoring Cdc14 phosphatase in the nucleolus. Nature 398:818–823
  • Wu, L., and Russell, P.. 1993. Nim1 kinase promotes mitosis by inactivating Wee1 tyrosine kinase. Nature 363:738–741

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