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Updated: Jun 27, 2025

Author Spotlight: Developing Novel Anticancer Therapeutics Targeting the DNA Damage Response
Published on: June 14, 2024
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.
Abstract:
DNA double-strand breaks occur in all human cells on a daily basis and must be repaired with high fidelity to minimize genomic instability1. Deficiencies in high-fidelity DNA repair by homologous recombination lead to dependence on DNA polymerase theta, which identifies DNA microhomologies in 3' single-stranded DNA overhangs and anneals them to initiate error-prone double-strand break repair. The resulting genomic instability is associated with numerous cancers, thereby making this polymerase an attractive therapeutic target2,3. However, despite the biomedical importance of polymerase theta, the molecular details of how it initiates DNA break repair remain unclear4,5. Here we present cryo-electron microscopy structures of the polymerase theta helicase domain bound to microhomology-containing DNA, revealing DNA-induced rearrangements of the helicase that enable DNA repair. Our structures show that DNA-bound helicase dimers facilitate a microhomology search that positions 3' single-stranded DNA ends in proximity to align complementary base pairs and anneal DNA microhomology. We define the molecular determinants that enable the polymerase theta helicase domain to identify and pair DNA microhomologies to initiate mutagenic DNA repair, providing mechanistic insights into therapeutic targeting of these interactions.
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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