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Mutational analysis of cysteine residues in Saccharomyces cerevisiae beta-tubulin: Importance of Cys354 in microtubule dynamics.

机译:酿酒酵母β-微管蛋白中半胱氨酸残基的突变分析:Cys354在微管动力学中的重要性。

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摘要

Cysteine residues play important roles in the control of tubulin function. To determine which of the six cysteine residues in beta-tubulin are critical to tubulin function, we mutated the cysteines in Saccharomyces cerevisiae beta-tubulin individually to alanine and serine residues.;Of the twelve mutations, only three produced significant effects on cell phenotype, C12S, C354A and C354S. The C12S mutation was lethal in the haploid, but the C12A mutation had no observable phenotype. The two C354 mutations, although not lethal, produced dramatic effects on microtubules and cellular processes that require microtubules. The C354 mutant cells had decreased growth rates, a slowed mitosis, increased resistance to benomyl, and impaired nuclear migration and spindle assembly. The C354A mutation-produced a more severe phenotype than the C354S mutation: the haploid cells had chromosome segregation defects, only 50% of cells in a culture were viable, and a significant percentage of the cells were mis-shapen. Cytoplasmic microtubules in the C354S and C354A cells were longer than in the control strain and spindle structures) appeared shorter and thicker. Both cytoplasmic and spindle microtubules in the two C354 mutants were extremely stable to cold temperature. After 24 h at 4°C the microtubules were still present and, in fact, very long and thick tubulin polymers had formed. When the C12S and the two C354 mutations were made in a diploid strain the mutated tubulin was incorporated into microtubules and the resulting heterozygotes had phenotypes that were intermediate between those of the mutated haploids and the wild-type strains.;Mutation of C354 in beta-tubulin to either a serine or alanine residue produced phenotypes characteristic of microtubules with increased stability. To determine whether this was indeed the case, we used a GFP-Tub1p (alpha-tubulin) fusion construct to measure microtubule dynamics in vivo and purified yeast tubulin to measure microtubule dynamics in vitro . The mutations severely dampen dynamics in vivo and in vitro. In unbudded cells catastrophe and rescue frequencies were decreased by a factor of 40, dynamicity was only 1 to 2% of that in wild-type cells, and microtubules spent greater than 90% of the time attenuated. (Abstract shortened by UMI.).
机译:半胱氨酸残基在微管蛋白功能的控制中起重要作用。为了确定β-微管蛋白中的六个半胱氨酸残基中哪一个对微管蛋白功能至关重要,我们将酿酒酵母β-微管蛋白中的半胱氨酸分别突变为丙氨酸和丝氨酸残基;在这十二个突变中,只有三个对细胞表型产生了显着影响, C12S,C354A和C354S。 C12S突变是致命的单倍体,但C12A突变没有可观察到的表型。这两个C354突变虽然不致命,但对微管和需要微管的细胞过程产生了巨大影响。 C354突变细胞的生长速率降低,有丝分裂减慢,对苯菌灵的抗性增强以及核迁移和纺锤体组装受损。 C354A突变产生比C354S突变更严重的表型:单倍体细胞具有染色体分离缺陷,培养物中只有50%的细胞是有活力的,并且很大比例的细胞畸形。 C354S和C354A细胞中的细胞质微管长于对照菌株,纺锤体结构看起来更短,更厚。两个C354突变体中的细胞质和纺锤体微管对低温都非常稳定。在4°C下放置24小时后,微管仍然存在,实际上,已经形成了很长很厚的微管蛋白聚合物。当在二倍体菌株中进行C12S和两个C354突变时,将突变的微管蛋白掺入微管中,所得杂合子的表型介于突变单倍体和野生型菌株之间。丝氨酸或丙氨酸残基的微管蛋白产生具有增加的稳定性的微管特征的表型。为了确定是否确实如此,我们使用了GFP-Tub1p(α-微管蛋白)融合构建体来测量体内微管动力学,并使用纯化的酵母微管蛋白来测量体外微管动力学。突变严重抑制体内和体外的动力学。在未预算的细胞中,灾难和救援频率降低了40倍,动态性仅是野生型细胞的1到2%,微管的衰减时间超过了90%。 (摘要由UMI缩短。)。

著录项

  • 作者

    Gupta, Mohan Lal, Jr.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Molecular biology.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2001
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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