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Biology subjects

Hess, L. D.

Publications and source records attributed to Hess, L. D..

2 recordsLinked to original sources

Rac1 and CHK1 Converge on Abi-1 to Regulate DNA Repair Dependency and Treatment Response in Human Cancers

Radiation therapy (RT) resistance remains a major clinical challenge, yet biomarkers guiding precision radiosensitization are lacking. We previously demonstrated that Rac1 promotes RT resistance in glioblastoma (GBM) by inducing Abi-1-S323 dephosphorylation and enhancing non-homologous end joining (NHEJ). Here, we identify Abi-1-S323 as a key regulator of DNA repair states and a determinant of therapeutic efficacy in human cancers. Clinically, loss of Abi-1-S323 phosphorylation was associated with poor outcomes in patients with RT-treated GBM. Bioinformatic analyses revealed that non-small cell lung cancer (NSCLC) and head and neck cancer (HNC) are among the cancers with frequent RAC1 amplification, suggesting that these tumor types may have increased Rac1-Abi-1 signaling activity. Loss of Abi-1-S323 phosphorylation also predicted poor outcomes in patients with RT-treated HNC. Consistent with these clinical observations, high Rac1 activity and low Abi-1-S323 phosphorylation were associated with enhanced DNA double-strand break repair and radioresistance in NSCLC and HNC models, whereas genetic or pharmacological inhibition of this signaling impaired DNA repair and radiosensitized tumors in vitro and in vivo. Mechanistically, we identified CHK1 as a kinase that phosphorylates Abi-1 at S323 and defines an alternative homologous recombination (HR)-dependent repair state. Tumors with high Rac1-Abi-1 signaling exhibited elevated NHEJ capacity and were selectively radiosensitized by Rac1 inhibition, whereas tumors with low Rac1-Abi-1 signaling displayed high CHK1 activity, preferentially relied on HR, and were selectively radiosensitized by CHK1 inhibition. These findings establish Abi-1-S323 as a biomarker defining therapeutically distinct DNA repair states and provide a framework for precision radiosensitization.

cancer biology↗

Mismatch repair MLH complexes make distinct contributions to post-replicative mismatch repair versus trinucleotide repeat expansions

Mismatch repair (MMR) is a highly conserved DNA repair pathway that promotes genome stability by directing the repair of errors in DNA replication. In Saccharomyces cerevisiae, MMR is initiated by either Msh2-Msh3 or Msh2-Msh6, via recognition of insertion deletion loops (IDLs; up to [~] 17 nucleotides) and misincorporation events, respectively. Both complexes recognize and bind small (1-2 nucleotide) IDLs. Once bound, MSH complexes recruit one or more downstream MLH complexes to continue repair: Mlh1-Pms1, Mlh1-Mlh2 and/or Mlh1-Mlh3. Msh2-Msh3 also promotes CAG trinucleotide repeat (TNR) expansions through specific DNA-binding to TNR DNA structures, followed by recruitment of MLH complexes. These expansions lead to genome instability that causes neurodegenerative diseases such as Huntingtons Disease in humans. Here, we defined a hierarchy of MLH function in these Msh2-Msh3-mediated pathways in vivo in S. cerevisiae. We determined that Mlh1-Pms1 is the primary MLH complex required in Msh2-Msh3-mediated MMR. In contrast, all three MLH complexes were required to promote CAG expansions, with loss of Mlh1-Pms1 or Mlh1-Mlh2 exhibiting the strongest effects. Mutations in PMS1 and MLH3 were synergistic. We propose a model in which Mlh1-Pms1 is primarily responsible for "appropriate" Msh2-Msh3-mediated MMR, while all three MLH complexes collaborate specifically in the presence of CAG structure, to promote a "pathogenic" Msh2-Msh3-mediated pathway that leads to expansions. Our model highlights the importance of DNA structure-dependent conformations in modulating MLH function.

genetics↗