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.

The EMBO Journal
|October 4, 2021
PubMed

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.

Related Concept Videos

Destabilization of Microtubules01:45

Destabilization of Microtubules

The destabilization of microtubules can occur during different stages of the microtubule lifecycle, such as nucleation or elongation. It can take place at either end of the microtubule or in the microtubule lattices as a whole. The lifespan of individual microtubules within a cell varies according to the cell type and stage of the cell cycle. During interphase, the lifespan of the microtubule is about 30 minutes, while during cell division, it is about 15 minutes. In axonal microtubules of...
2.9K
Drugs that Destabilize Microtubules01:10

Drugs that Destabilize Microtubules

Microtubules are dynamic structures and can be regulated by microtubule targeting agents (MTAs). Microtubule destabilizing drugs are a class of MTAs that destabilize and prevent microtubules' polymerization. Both natural and synthetic chemicals can be found under this class of drugs. Vincristine and vinblastine, two vinca alkaloids, and colchicine were among the first to be discovered. These drugs can affect cells in various ways, either by inducing a change in cell morphology, preventing...
2.1K
Microtubule Instability02:17

Microtubule Instability

Microtubules are hollow cylindrical filaments having a diameter of approximately 25 nm and a length that varies from 200 nm to 25 μm. GTP-bound tubulin subunits form αβ-heterodimers for microtubule assembly. These core building blocks interact longitudinally, polymerizing into protofilaments. The protofilaments then interact with one another through lateral bonding forces to form stable cylindrical microtubules. These cylindrical filaments are dynamic as they undergo repeated...
5.4K
Drugs that Stabilize Microtubules01:15

Drugs that Stabilize Microtubules

Microtubules are dynamic structures that undergo cycles of catastrophe and rescue. The microtubules play a central role in cell division by forming the spindle apparatus for segregating the chromosomes. This makes them ideal targets for regulating dividing cells in tumors and malignant cancer cells. Microtubule stabilizing drugs help stabilize the microtubule formation and promote its polymerization. Paclitaxel was the first microtubule stabilizing agent used as anticancer drug in chemotherapy...
2.2K
Mutations in Microorganisms01:18

Mutations in Microorganisms

Mutations are heritable changes in an organism’s genome involving alterations in the base sequence of DNA or RNA. These changes can influence cellular processes and phenotypic traits, potentially transforming the unaltered wild type into a mutant form. Such changes, termed forward mutations, are pivotal in shaping the genetic diversity of organisms.RNA viruses exhibit the highest mutation rates due to the absence of robust proofreading mechanisms during genome replication. In contrast,...
182
Spontaneous and Induced Mutations01:30

Spontaneous and Induced Mutations

Spontaneous mutations arise infrequently during DNA replication due to errors in the process. A key factor behind these errors is tautomeric shifts in nitrogenous bases, where bases transition from keto to enol forms or amino to imino forms. This shift can alter base-pairing rules, leading to mutations. Additionally, reactive oxygen species (ROS) arising from aerobic metabolism can damage DNA, resulting in depurination (loss of a purine base) or depyrimidination (loss of a pyrimidine base).
328