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Heterozygous Disruption of the TATA-Binding Protein Gene in DT40 Cells Causes Reduced cdc25B Phosphatase Expression and Delayed Mitosis

机译:TATA结合蛋白基因在DT40细胞中的杂合性破坏导致cdc25B磷酸酶表达降低和有丝分裂延迟。

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摘要

TATA-binding protein (TBP) is a key general transcription factor required for transcription by all three nuclear RNA polymerases. Although it has been intensively analyzed in vitro and in Saccharomyces cerevisiae, in vivo studies of vertebrate TBP have been limited. We applied gene-targeting techniques using chicken DT40 cells to generate heterozygous cells with one copy of the TBP gene disrupted. Such TBP-heterozygous (TBP-Het) cells showed unexpected phenotypic abnormalities, resembling those of cells with delayed mitosis: a significantly lower growth rate, larger size, more G2/-M- than G1-phase cells, and a high proportion of sub-G1, presumably apoptotic, cells. Further evidence for delayed mitosis in TBP-Het cells was provided by the differential effects of several cell cycle-arresting drugs. To determine the cause of these defects, we first examined the status of cdc2 kinase, which regulates the G2/M transition, and unexpectedly observed more hyperphosphorylated, inactive cdc2 in TBP-Het cells. Providing an explanation for this, mRNA and protein levels of cdc25B, the trigger cdc2 phosphatase, were significantly and specifically reduced. These properties were all due to decreased TBP levels, as they could be rescued by expression of exogeneous TBP, including, in most but not all cases, a mutant form lacking the species-specific N-terminal domain. Our results indicate that small changes in TBP concentration can have profound effects on cell growth in vertebrate cells.
机译:TATA结合蛋白(TBP)是所有三种核RNA聚合酶转录所需的关键通用转录因子。尽管已在体外和酿酒酵母中对其进行了深入分析,但脊椎动物TBP的体内研究却受到限制。我们使用鸡DT40细胞应用了基因靶向技术,以产生一拷贝的TBP基因被破坏的杂合细胞。这类TBP杂合(TBP-Het)细胞表现出意料之外的表型异常,类似于有丝分裂延迟的细胞:异常低的生长速度,更大的尺寸,比G1期细胞更大的G2 / -M-细胞和大量的-G1,可能是凋亡细胞。几种细胞周期阻滞药物的差异作用提供了TBP-Het细胞延迟有丝分裂的进一步证据。为了确定这些缺陷的原因,我们首先检查了cdc2激酶的状态,该状态调节G2 / M过渡,并出乎意料地在TBP-Het细胞中观察到了更多的过度磷酸化的,无活性的cdc2。为此,cdc25B(触发cdc2磷酸酶)的mRNA和蛋白水平显着降低了。这些性质都是由于降低的TBP水平所致,因为它们可以通过外源TBP的表达来挽救,包括在大多数情况下(但不是全部),缺乏物种特异性N端结构域的突变形式。我们的结果表明,TBP浓度的微小变化可能会对脊椎动物细胞的细胞生长产生深远的影响。

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