Genetic analysis of baker's yeast Msh4-Msh5 reveals a threshold crossover level for meiotic viability

K T Nishant1, Cheng Chen, Miki Shinohara

  • 1Department of Molecular Biology and Genetics, Cornell University, Ithaca, New York, United States of America.

Plos Genetics
|September 25, 2010
PubMed

Insights

The Msh4-Msh5 complex is crucial for stable recombination during meiosis. Mutants show reduced crossing over on larger chromosomes, highlighting its role in ensuring proper genetic exchange for viable spore formation.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cell Biology

Background:

  • The Msh4-Msh5 complex plays a key role in stabilizing recombination intermediates during meiosis.
  • It is believed to facilitate crossover formation by binding to Holliday junctions.

Purpose of the Study:

  • To investigate the function of the Msh4-Msh5 complex in Saccharomyces cerevisiae.
  • To identify specific residues critical for Msh4-Msh5 function through targeted mutagenesis.

Main Methods:

  • Site-directed mutagenesis of 57 conserved and specific residues in Msh4 and Msh5.
  • Analysis of spore viability, crossover frequencies, and synaptonemal complex assembly in mutant strains.
  • Construction and analysis of a triple mutant combining msh4/5-t, spo11-HA, and pch2Δ mutations.

Main Results:

  • Msh4-Msh5 threshold (msh4/5-t) mutants exhibited reduced crossing over on large and medium chromosomes but not small ones.
  • These mutants also displayed defects in synaptonemal complex assembly.
  • A triple mutant showed synergistic defects in spore viability, indicating the importance of Pch2-mediated crossover interference when crossovers are limited.

Conclusions:

  • The baker's yeast meiotic cell does not require the full complement of crossovers maintained by homeostasis for spore viability.
  • Pch2-mediated crossover interference is essential for maintaining meiotic viability under conditions of limited crossovers.

Related Concept Videos

Meiosis I03:09

Meiosis I

Meiosis is the division of a diploid cell into haploid cells forming sperm and eggs in animals through differentiation. Meiosis I is the first stage of meiosis, where the genetic recombination of homologous chromosomes and the reduction of the ploidy level by half occurs.
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...
Meiosis II02:02

Meiosis II

Meiosis II entails cell division and segregation of the sister chromatids, resulting in the production of four unique haploid gametes. The steps for meiosis II are similar to mitosis, except that meiosis II occurs in haploid cells, whereas mitosis occurs in diploid cells.
The timing and cell division patterns of meiosis differ between males and females. In male meiosis, the centrosomes are part of the formation of the meiotic spindle. However, in oocytes, including that of humans, Drosophila,...
Crossing Over01:30

Crossing Over

Crossing over is the exchange of genetic information between homologous chromosomes during prophase I of meiosis I. Genetic recombination gives rise to allelic diversity in the newly formed daughter cells. In humans, crossing over produces genetically distinct haploid egg and sperm cells that undergo fertilization to produce unique offspring. Before cell division starts, the germ cell’s chromosome(s) undergo duplication in the S phase of the cell cycle. As the cells enter prophase I, duplicated...
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Gene Conversion02:08

Gene Conversion

Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...