A novel chromosome engineering technology is described which enables conditional splitting of natural chromosomes in haploid cells of the yeast Saccharomyces cerevisiae. The technology consists of introduction of a recognition sequence for the homing endonuclease PI-SceI into the S. cerevisiae genome and conditional expression of the gene encoding the PI-SceI enzyme under the control of the MET3 promoter. To test the technology, we split chromosome V upstream of GLC7 by use of the autonomously replicating sequence (ARS)-added polymerase-chain-reaction-mediated chromosome-splitting (ARS-PCS) method that we recently developed. A recognition sequence for PI-SceI was subsequently introduced downstream of the GLC7 locus. Splitting was analyzed following induction of the PI-SceI-encoding gene. Approximately 50% of the clones tested had the expected minichromosome harboring only the GLC7 gene, suggesting that any desired chromosomal region may be converted into a new chromosome by use of this method. Because this technology allows initial construction of a strain harboring multiple constructs prior to subsequent induction of random chromosome loss events under specific selective conditions, we propose that this technology may be applicable to reconstructing the S. cerevisiae genome by means of combinatorial loss of minichromosomes.

译文

描述了一种新颖的染色体工程技术,该技术可使酿酒酵母单倍体细胞中的自然染色体有条件分裂。该技术包括将归巢核酸内切酶PI-SceI的识别序列引入酿酒酵母基因组,并在MET3启动子的控制下条件表达编码PI-SceI酶的基因。为了测试该技术,我们使用了我们最近开发的自主复制序列 (ARS) 添加的聚合酶链反应介导的染色体分裂 (ARS-PCS) 方法,将GLC7上游的V染色体分裂。随后在GLC7基因座的下游引入了PI-SceI的识别序列。在诱导PI-SceI编码基因后分析了分裂。大约50% 的测试克隆具有预期的微型染色体,仅包含GLC7基因,这表明任何期望的染色体区域都可以通过使用该方法转化为新染色体。由于该技术允许在特定的选择条件下随后诱导随机染色体丢失事件之前初始构建包含多个构建体的菌株,因此我们建议该技术可能适用于通过组合丢失的微型染色体来重建酿酒酵母基因组。

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