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Published on: February 20, 2017
Epistasis, aneuploidy, and functional mutations underlie evolution of resistance to induced microtubule
Mattia Pavani1, Paolo Bonaiuti1, Elena Chiroli1
1IFOM, The Firc Institute of Molecular Oncology, Milano, Italy.
Abstract:
Cells with blocked microtubule polymerization are delayed in mitosis, but eventually manage to proliferate despite substantial chromosome missegregation. While several studies have analyzed the first cell division after microtubule depolymerization, we have asked how cells cope long-term with microtubule impairment. We allowed 24 clonal populations of yeast cells with beta-tubulin mutations preventing proper microtubule polymerization, to evolve for ˜150 generations. At the end of the laboratory evolution experiment, cells had regained the ability to form microtubules and were less sensitive to microtubule-depolymerizing drugs. Whole-genome sequencing identified recurrently mutated genes, in particular for tubulins and kinesins, as well as pervasive duplication of chromosome VIII. Recreating these mutations and chromosome VIII disomy prior to evolution confirmed that they allow cells to compensate for the original mutation in beta-tubulin. Most of the identified mutations did not abolish function, but rather restored microtubule functionality. Analysis of the temporal order of resistance development in independent populations repeatedly revealed the same series of events: disomy of chromosome VIII followed by a single additional adaptive mutation in either tubulins or kinesins. Since tubulins are highly conserved among eukaryotes, our results have implications for understanding resistance to microtubule-targeting drugs widely used in cancer therapy.
Insights
Yeast cells evolved resistance to microtubule disruption by acquiring mutations in tubulins and kinesins, alongside chromosome VIII duplication. These genetic changes restored microtubule function and drug resistance over 150 generations.
Area of Science:
- Cell Biology
- Genetics
- Evolutionary Biology
Background:
- Microtubule polymerization is crucial for cell division.
- Impaired microtubule function leads to mitotic delays and chromosome missegregation.
- Long-term cellular adaptation to microtubule impairment is not well understood.
Purpose of the Study:
- To investigate how yeast cells adapt to long-term microtubule impairment.
- To identify genetic mechanisms conferring resistance to microtubule-targeting drugs.
Main Methods:
- Laboratory evolution of yeast populations with beta-tubulin mutations for 150 generations.
- Whole-genome sequencing to identify recurrent mutations.
- Functional validation of identified mutations and chromosome duplications.
Main Results:
- Evolved yeast regained microtubule formation ability and reduced sensitivity to depolymerizing drugs.
- Recurrent mutations in tubulins and kinesins, and chromosome VIII disomy were identified.
- Chromosome VIII disomy followed by tubulin or kinesin mutations consistently conferred resistance.
Conclusions:
- Yeast can adapt to severe microtubule defects through specific genetic alterations.
- Chromosome VIII disomy and mutations in microtubule-associated genes are key compensatory mechanisms.
- Findings have implications for understanding cancer drug resistance.
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