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Updated: Jul 7, 2025

Targeted in Situ Mutagenesis of Histone Genes in Budding Yeast
Published on: January 26, 2017
Exploring the Molecular Underpinnings of Cancer-Causing Oncohistone Mutants Using Yeast as a Model
Xinran Zhang1, Dorelle V Fawwal1,2,3, Jennifer M Spangle2,4
1Department of Biology, Emory University, Atlanta, GA 30322, USA.
Abstract:
Understanding the molecular basis of cancer initiation and progression is critical in developing effective treatment strategies. Recently, mutations in genes encoding histone proteins that drive oncogenesis have been identified, converting these essential proteins into "oncohistones". Understanding how oncohistone mutants, which are commonly single missense mutations, subvert the normal function of histones to drive oncogenesis requires defining the functional consequences of such changes. Histones genes are present in multiple copies in the human genome with 15 genes encoding histone H3 isoforms, the histone for which the majority of oncohistone variants have been analyzed thus far. With so many wildtype histone proteins being expressed simultaneously within the oncohistone, it can be difficult to decipher the precise mechanistic consequences of the mutant protein. In contrast to humans, budding and fission yeast contain only two or three histone H3 genes, respectively. Furthermore, yeast histones share ~90% sequence identity with human H3 protein. Its genetic simplicity and evolutionary conservation make yeast an excellent model for characterizing oncohistones. The power of genetic approaches can also be exploited in yeast models to define cellular signaling pathways that could serve as actionable therapeutic targets. In this review, we focus on the value of yeast models to serve as a discovery tool that can provide mechanistic insights and inform subsequent translational studies in humans.
Insights
Yeast models simplify studying cancer-driving oncohistone mutations. Their genetic simplicity and conserved histones offer mechanistic insights for developing new cancer therapies.
Area of Science:
- Molecular Biology
- Cancer Research
- Genetics
Background:
- Cancer initiation and progression involve mutations in histone genes, creating
- oncohistones
- .
- Single missense mutations in histones can alter their normal function, driving oncogenesis.
- Human cells express multiple histone H3 isoforms, complicating the study of specific oncohistone mutants.
Purpose of the Study:
- To highlight the utility of yeast models in understanding oncohistone function.
- To explore how yeast's genetic simplicity aids in deciphering the mechanistic consequences of oncohistone mutations.
- To identify potential therapeutic targets through yeast-based genetic studies.
Main Methods:
- Comparative genomics of histone H3 genes in humans and yeast.
- Leveraging yeast's genetic tractability to study oncohistone mutants.
- Utilizing yeast to identify cellular signaling pathways relevant to cancer.
Main Results:
- Yeast possess few histone H3 genes (2-3), unlike humans (15), simplifying mutant analysis.
- Yeast histone H3 shares ~90% sequence identity with human H3, ensuring conserved function.
- Yeast models facilitate the dissection of oncohistone mechanisms and identification of therapeutic targets.
Conclusions:
- Yeast serve as a powerful model system for characterizing oncohistones due to genetic simplicity and evolutionary conservation.
- Mechanistic insights gained from yeast studies can inform translational research in human cancer.
- Yeast models enable the discovery of actionable therapeutic targets for cancer treatment.
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