Alterations in linker flexibility suppress DNA topoisomerase I mutant-induced cell lethality

Carmen Losasso1, Erica Cretaio1, Komaraiah Palle2

  • 1Department of Biology, University of Padua, Padua 35131, Italy.

Insights

Investigating DNA topoisomerase I (Top1p) linker mutations reveals altered enzyme activity and drug resistance. Changes in linker flexibility impact DNA binding and catalysis, affecting Top1p

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Structural Biology

Background:

  • Eukaryotic DNA topoisomerase I (Top1p) is crucial for managing DNA topology, forming a covalent intermediate stabilized by camptothecin (CPT) anticancer drugs.
  • Crystallographic studies reveal Top1p as a clamp around DNA, with its activity influenced by linker flexibility and active site interactions.
  • Previous work showed a specific linker mutation (A653P) confers CPT resistance by increasing DNA religation rates.

Purpose of the Study:

  • To investigate the functional consequences of linker flexibility on Top1p catalysis and drug sensitivity.
  • To examine the combined effects of the A653P linker mutation and a self-poisoning active site mutation (T718A) on Top1p function.
  • To elucidate how linker flexibility influences the enzyme's active site geometry and DNA cleavage/religation kinetics.

Main Methods:

  • Genetic analysis in yeast to assess the viability of double mutants (A653P and T718A).
  • In vitro and in vivo assays to measure Top1p specific activity and DNA binding.
  • Analysis of enzyme sensitivity to camptothecin (CPT).

Main Results:

  • The A653P mutation suppressed the lethal phenotype of the Top1T718A mutant in yeast.
  • The double mutant (A653P/T718A) did not regain sensitivity to CPT.
  • Specific activity of the double mutant was reduced both in vivo and in vitro, indicating decreased DNA binding.

Conclusions:

  • Changes in the flexibility or orientation of the Top1p linker domain significantly impact enzyme catalysis.
  • Altered linker dynamics affect the active site geometry, influencing DNA cleavage and religation rates.
  • These findings support a model where linker flexibility is a key determinant of Top1p activity and CPT sensitivity.

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