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Updated: Aug 20, 2026

Microscopy of Fission Yeast Sexual Lifecycle
Published on: March 9, 2016
Prm1 prevents contact-dependent lysis of yeast mating pairs
Hui Jin1, Candice Carlile, Scott Nolan
1Department of Biochemistry and Molecular Biology, Johns Hopkins Bloomberg School of Public Health, 615 N. Wolfe St., Baltimore, MD 21205, USA.
Abstract:
Membrane fusion requires localized destabilization of two phospholipid bilayers, but unrestrained membrane destabilization could result in lysis. prm1 mutant yeast cells have a defect at the plasma membrane fusion stage of mating that typically results in the accumulation of prezygotes that have fingers of membrane-bound cytoplasm projecting from one cell of each pair into its mating partner in the direction of the osmotic gradient between the cells. However, some prm1 mating pairs fuse successfully whereas the two cells in other prm1 mating pairs simultaneously lyse. Lysis only occurs if both mating partners are prm1 mutants. Osmotic stabilization does not protect prm1 mating pairs from lysis, indicating that lysis is not caused by a cell wall defect. prm1 mating pairs without functional mitochondria still lyse, ruling out programmed cell death. No excess lysis was found after pheromone treatment of haploid prm1 cells, and lysis did not occur in mating pairs when prm1 was combined with the fus1 and fus2 mutations to block cell wall remodeling. Furthermore, short (<1 microm) cytoplasmic microfingers indicating the completion of cell wall remodeling appeared immediately before lysis. In combination, these results demonstrate that plasma membrane contact is a prerequisite for lysis. Cytoplasmic microfingers are unlikely to cause lysis since most prm1 mating pairs with microfingers do not lyse, and microfingers were also detected before fusion in some wild-type mating pairs. The lysis of prm1 mutant mating pairs suggests that the Prm1 protein stabilizes the membrane fusion event of yeast mating.
Insights
The Prm1 protein is crucial for stabilizing yeast cell membrane fusion during mating. Without functional Prm1, mating yeast cells risk lysis, indicating its essential role in preventing catastrophic membrane destabilization.
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Membrane fusion is essential for cellular processes like yeast mating.
- Uncontrolled membrane destabilization can lead to cell lysis.
- The Prm1 protein's role in yeast mating fusion is not fully understood.
Purpose of the Study:
- Investigate the function of the Prm1 protein in yeast plasma membrane fusion.
- Determine the cause of cell lysis observed in prm1 mutant yeast mating pairs.
- Elucidate the relationship between membrane fusion, cell wall remodeling, and cell lysis.
Main Methods:
- Analysis of prm1 mutant yeast mating pairs.
- Observation of prezygote formation and cell lysis.
- Genetic manipulation including fus1 and fus2 mutations.
- Assessment of osmotic stabilization and mitochondrial function.
Main Results:
- prm1 mutant yeast mating pairs exhibit defects in plasma membrane fusion, leading to prezygote formation or simultaneous lysis.
- Lysis occurs specifically when both mating partners are prm1 mutants and is independent of osmotic pressure or mitochondrial function.
- Cell wall remodeling completion, indicated by cytoplasmic microfingers, precedes lysis but does not directly cause it.
- Plasma membrane contact is a prerequisite for lysis in prm1 mutants.
Conclusions:
- The Prm1 protein plays a critical role in stabilizing the membrane fusion process during yeast mating.
- Loss of Prm1 function destabilizes the plasma membrane, leading to lysis under specific mating conditions.
- These findings highlight Prm1's importance in preventing catastrophic membrane events during cell-cell fusion.
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