Key Laboratory of Synthetic Biology, CAS Center for Excellence in Molecular Plant Sciences, Shanghai Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai, China.
University of Chinese Academy of Sciences, Beijing, China.
Nat Protoc. 2019 Aug;14(8):2521-2545. doi: 10.1038/s41596-019-0192-0. Epub 2019 Jul 12.
CRISPR-Cas9-facilitated functional chromosome fusion allows the generation of a series of yeast strains with progressively reduced chromosome numbers that are valuable resources for the study of fundamental concepts in chromosome biology, including replication, recombination and segregation. We created a new yeast strain with a single chromosome by using the protocol for chromosome fusion described herein. To ensure the accuracy of chromosome fusions in yeast, the long redundant repetitive sequences near linear chromosomal ends are deleted, and the fusion orders are correspondingly determined. Possible influence on gene expression is minimized to retain gene functionality. This protocol provides experimentally derived guidelines for the generation of functional chromosome fusions in yeast, especially for the deletion of repetitive sequences, the determination of the fusion order and cleavage sites, and primary evaluation of the functionality of chromosome fusions. Beginning with design, one round of typical chromosome fusion and functional verifications can be accomplished within 18 d.
CRISPR-Cas9 介导的功能染色体融合允许生成一系列染色体数量逐渐减少的酵母菌株,这些菌株是研究染色体生物学基本概念(包括复制、重组和分离)的宝贵资源。我们使用本文描述的染色体融合方案创建了一个具有单条染色体的新型酵母菌株。为了确保酵母中染色体融合的准确性,线性染色体末端附近的长重复冗余序列被删除,并且融合顺序相应地确定。为了保留基因功能,将可能对基因表达产生的影响最小化。该方案为酵母中功能染色体融合的产生提供了实验衍生的指导原则,特别是对于重复序列的删除、融合顺序和切割位点的确定以及染色体融合功能的初步评估。从设计开始,一轮典型的染色体融合和功能验证可以在 18 天内完成。