Human polymerase theta helicase positions DNA microhomologies for double-strand break repair

Christopher J Zerio1, Yonghong Bai2, Brian A Sosa-Alvarado2

  • 1Department of Integrative Structural and Computational Biology, Scripps Research; La Jolla, CA, USA.

Insights

DNA polymerase theta repairs DNA double-strand breaks using microhomology. New cryo-EM structures reveal how this enzyme searches for and anneals DNA microhomologies, offering insights for cancer therapy.

Area of Science:

  • Molecular Biology
  • Genetics
  • Structural Biology

Background:

  • DNA double-strand breaks are common and require high-fidelity repair to prevent genomic instability.
  • Defects in homologous recombination lead to reliance on DNA polymerase theta for error-prone repair, contributing to cancer.
  • The precise mechanism of DNA polymerase theta in initiating repair remains poorly understood.

Approach:

  • Utilized cryo-electron microscopy (cryo-EM) to determine structures of the polymerase theta helicase domain.
  • Examined the helicase domain in complex with DNA fragments containing microhomologies.
  • Analyzed DNA-induced structural rearrangements within the helicase domain.

Key Points:

  • Cryo-EM structures reveal DNA-bound polymerase theta helicase dimers.
  • DNA binding induces rearrangements in the helicase, facilitating microhomology identification.
  • The enzyme positions 3' single-stranded DNA ends for complementary base pairing and annealing of microhomologies.

Conclusions:

  • The polymerase theta helicase domain actively searches for and pairs DNA microhomologies to initiate mutagenic repair.
  • Structural insights elucidate the molecular mechanisms underlying polymerase theta's role in DNA repair.
  • Understanding these interactions provides a basis for developing targeted cancer therapies.

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