Tracking chromosome dynamics in live yeast cells: coordinated movement of rDNA homologs and anaphase disassembly of the nucleolus during meiosis
0301 basic medicine
Saccharomyces cerevisiae Proteins
Green Fluorescent Proteins
Saccharomyces cerevisiae
Protein Engineering
DNA, Ribosomal
Repressor Proteins
Luminescent Proteins
Meiosis
03 medical and health sciences
Microscopy, Fluorescence
Chromosome Segregation
Gene Expression Regulation, Fungal
Lac Repressors
Chromosomes, Fungal
Anaphase
Homologous Recombination
Cell Nucleolus
Red Fluorescent Protein
DOI:
10.1007/s10577-011-9253-0
Publication Date:
2011-11-14T11:23:43Z
AUTHORS (4)
ABSTRACT
A prerequisite for determination of chromosome dynamics in live cells is development of a method for staining or marking the chromosome of interest. We describe here a unique chromosome-tracking system that differentially marks two large chromosome segments from homologs in the budding yeast Saccharomyces cerevisiae. Using yeast genetics and the special features at the repetitive ribosomal RNA (rRNA) gene cluster, we incorporated arrays of the tet operator and the lac operator into each repeat of the two rDNA homologs by homologous recombination. Expression of tet repressor-fused green fluorescent protein and lac repressor-fused red fluorescent protein in engineered cells led to the differential labeling of rDNA homologs. Using live-cell three-dimensional fluorescence microscopy, we showed that homologs undergo contraction and expansion cycles in an actin-dependent manner during meiosis and that chromosome mobility appears to be correlated with nuclear positioning. Our observations further revealed that, in contrast to mitosis, in meiosis the yeast nucleolus, the site of rRNA processing, was disassembled upon anaphase onset, suggesting a differential regulation of the rDNA array during meiotic chromosome segregation. Because rRNA genes are highly conserved, a similar chromosome-engineering approach may be adaptable in other eukaryotes for functional assays of chromosome organization in live cells.
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