Related Experiment Video
Updated: May 12, 2026

A Suppressor Screen for the Characterization of Genetic Links Regulating Chronological Lifespan in Saccharomyces cerevisiae
Published on: September 17, 2020
The 2 micron plasmid of Saccharomyces cerevisiae: a miniaturized selfish genome with optimized functional competence
Keng-Ming Chan1, Yen-Ting Liu, Chien-Hui Ma
1Section of Molecular Genetics and Microbiology, University of Texas at Austin, Austin, TX 78712, USA.
Abstract:
The 2 micron plasmid of Saccharomyces cerevisiae is a relatively small multi-copy selfish DNA element that resides in the yeast nucleus at a copy number of 40-60 per haploid cell. The plasmid is able to persist in host populations with almost chromosome-like stability with the help of a partitioning system and a copy number control system. The first part of this article describes the properties of the partitioning system comprising two plasmid coded proteins, Rep1 and Rep2, and a partitioning locus STB. Current evidence supports a model in which the Rep-STB system couples plasmid segregation to chromosome segregation by promoting the physical association of plasmid molecules with chromosomes. In the second part, the focus is on the Flp site-specific recombination system housed by the plasmid, which plays a critical role in maintaining steady state plasmid copy number. The Flp system corrects any decrease in plasmid population by promoting plasmid amplification via a recombination induced rolling circle replication mechanism. Appropriate plasmid amplification, without runaway increase in copy number, is ensured by positive and negative regulation of FLP gene expression by plasmid coded proteins and by the control of Flp level/activity through post-translational modification of Flp by the cellular sumoylation system. The Flp system has been successfully utilized to understand mechanisms of site-specific recombination and to bring about directed genetic alterations for addressing fundamental problems in biology and for accomplishing bio-engineering objectives. A particularly interesting, and perhaps less well known and underappreciated, application of Flp in revealing unique DNA topologies required to confer functional competence to DNA-protein machines is discussed.
Insights
The 2 micron plasmid in yeast uses partitioning and copy control systems for stability. Its Flp recombinase system amplifies DNA, ensuring stable inheritance and enabling genetic engineering.
Area of Science:
- Molecular Biology
- Yeast Genetics
- Epigenetics
Background:
- The 2 micron plasmid of Saccharomyces cerevisiae is a multi-copy nuclear DNA element.
- It maintains high copy numbers (40-60 per cell) with chromosome-like stability.
- Persistence relies on partitioning and copy number control systems.
Purpose of the Study:
- To describe the properties of the 2 micron plasmid's partitioning and copy number control systems.
- To explain the mechanisms of plasmid stability and amplification.
- To highlight the applications of the Flp recombinase system in biology and bio-engineering.
Main Methods:
- Review of current evidence on the Rep-STB partitioning system.
- Analysis of the Flp site-specific recombination system's role in copy number control.
- Discussion of Flp system applications in genetic alterations and DNA topology studies.
Main Results:
- The Rep-STB system couples plasmid and chromosome segregation via physical association.
- The Flp system amplifies plasmid DNA through rolling circle replication to maintain copy number.
- Regulation of FLP gene expression and Flp activity (via sumoylation) prevents runaway amplification.
Conclusions:
- The 2 micron plasmid utilizes sophisticated systems for stable inheritance and copy number maintenance.
- The Flp system is crucial for plasmid amplification and has broad applications in genetic engineering and understanding DNA-protein interactions.
- The Flp system's role in revealing DNA topologies for DNA-protein machines is an underappreciated application.
Related Concept Videos
Bioreactor Controls-III
Plasmids
Chromosome Structure
The centromere is a DNA sequence that links sister chromatids. This is also where kinetochores, protein complexes to which spindle microtubules attach, are constructed after the chromosome is replicated. The kinetochores allow the spindle microtubules to move the chromosomes within the cell during cell division.
Telomeres consist of non-coding repetitive nucleotide...
Evolution of Microbial Genome

