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Updated: May 21, 2026

Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Untangling the Roles of Anti-Apoptosis in Regulating Programmed Cell Death using Humanized Yeast Cells
Caitlin Clapp1, Liam Portt, Chamel Khoury
1Department of Chemistry and Chemical Engineering, Royal Military College Kingston, ON, Canada.
Abstract:
Genetically programmed cell death (PCD) mechanisms, including apoptosis, are important for the survival of metazoans since it allows, among things, the removal of damaged cells that interfere with normal function. Cell death due to PCD is observed in normal processes such as aging and in a number of pathophysiologies including hypoxia (common causes of heart attacks and strokes) and subsequent tissue reperfusion. Conversely, the loss of normal apoptotic responses is associated with the development of tumors. So far, limited success in preventing unwanted PCD has been reported with current therapeutic approaches despite the fact that inhibitors of key apoptotic inducers such as caspases have been developed. Alternative approaches have focused on mimicking anti-apoptotic processes observed in cells displaying increased resistance to apoptotic stimuli. Hormesis and pre-conditioning are commonly observed cellular strategies where sub-lethal levels of pro-apoptotic stimuli lead to increased resistance to higher or lethal levels of stress. Increased expression of anti-apoptotic sequences is a common mechanism mediating these protective effects. The relevance of the latter observation is exemplified by the observation that transgenic mice overexpressing anti-apoptotic genes show significant reductions in tissue damage following ischemia. Thus strategies aimed at increasing the levels of anti-apoptotic proteins, using gene therapy or cell penetrating recombinant proteins are being evaluated as novel therapeutics to decrease cell death following acute periods of cell death inducing stress. In spite of its functional and therapeutic importance, more is known regarding the processes involved in apoptosis than anti-apoptosis. The genetically tractable yeast Saccharomyces cerevisiae has emerged as an exceptional model to study multiple aspects of PCD including the mitochondrial mediated apoptosis observed in metazoans. To increase our knowledge of the process of anti-apoptosis, we screened a human heart cDNA expression library in yeast cells undergoing PCD due to the conditional expression of a mammalian pro-apoptotic Bax cDNA. Analysis of the multiple Bax suppressors identified revealed several previously known as well as a large number of clones representing potential novel anti-apoptotic sequences. The focus of this review is to report on recent achievements in the use of humanized yeast in genetic screens to identify novel stress-induced PCD suppressors, supporting the use of yeast as a unicellular model organism to elucidate anti-apoptotic and cell survival mechanisms.
Insights
Researchers used yeast to discover new ways to block programmed cell death (PCD). This could lead to new therapies for conditions like heart attacks and strokes by protecting cells from damage.
Area of Science:
- Cell Biology
- Genetics
- Biochemistry
Background:
- Programmed cell death (PCD), including apoptosis, is crucial for metazoan survival by removing damaged cells.
- Dysregulation of PCD is implicated in aging, hypoxia-related diseases (heart attacks, strokes), and cancer.
- Current therapies targeting PCD, especially apoptosis, have limited success, necessitating novel approaches.
Purpose of the Study:
- To identify novel anti-apoptotic sequences and understand cell survival mechanisms.
- To leverage yeast as a model system for studying metazoan PCD and anti-apoptosis.
- To explore strategies for preventing unwanted cell death in pathological conditions.
Main Methods:
- Screened a human heart cDNA library in yeast engineered to undergo PCD via Bax expression.
- Utilized genetically tractable yeast Saccharomyces cerevisiae as a model organism.
- Identified Bax suppressors to uncover anti-apoptotic factors.
Main Results:
- Identified several known and numerous novel potential anti-apoptotic sequences.
- Demonstrated the utility of humanized yeast in genetic screens for PCD suppressors.
- Provided insights into stress-induced cell death and survival pathways.
Conclusions:
- Yeast serves as an effective unicellular model for elucidating anti-apoptotic mechanisms.
- The identified suppressors offer potential therapeutic targets for preventing cell death.
- This approach advances the understanding of cell survival strategies relevant to human diseases.
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