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Biology subjects

Savu, D. I.

Publications and source records attributed to Savu, D. I..

2 recordsLinked to original sources

A flow cytometry-based screening platform for identifying candidate radiosensitizers targeting DNA repair

Radiotherapy induces cytotoxic DNA damage, but activation of DNA repair pathways and cell-cycle checkpoints can limit therapeutic efficacy. Here, we developed a high-throughput, flow cytometry-based screening platform to identify compounds that inhibit radiation-induced DNA repair and checkpoint activation. Reh leukemia and A549 lung cancer cells were irradiated and screened against up to 700 bioactive compounds, with DNA damage persistence quantified by {gamma}H2AX levels across independent screens. Cell barcoding using Pacific Blue staining was incorporated to enable highly accurate quantification of {gamma}H2AX across treatment conditions. The platform yielded robust and reproducible results and supported multiparametric analysis, including assessment of G2 checkpoint activation by phospho-histone H3. Largely overlapping candidate radiosensitizers were identified in both cell lines, including the multi-kinase inhibitor 5-iodotubercidin and the PI3K/mTOR inhibitor omipalisib. Validation studies in lung cancer and glioblastoma models confirmed screen performance. Mechanistically, omipalisib reduced phosphorylation of the non-homologous end-joining protein DNA-PK, consistent with impaired double-strand break repair. Both compounds enhanced radiosensitivity in clonogenic survival assays. Notably, 5-iodotubercidin increased radiosensitivity in glioblastoma cells despite previous reports of radioprotective effects in normal brain tissue. Together, these findings establish a robust barcoded screening approach for identifying radiosensitizers that target DNA damage repair and checkpoint responses.

cancer biology↗

Interferon signaling is enhanced by ATR inhibition in glioblastoma cells irradiated with X-rays, protons or carbon ions

Background and purposeInterferon signaling plays an important role in antitumor immune responses. Inhibitors of the DNA damage response, such as ATR inhibitors, can increase interferon signaling upon conventional radiotherapy with X-rays. However, whether such inhibitors also increase interferon (IFN) signaling after high linear energy transfer (LET) particle irradiation is not known. Materials and methodsHuman glioblastoma U-251 and T98G cells were treated with X-rays, protons (linear energy transfer (LET): 7 and 38 keV/m) and carbon ions (LET: 28 and 73 keV/m), with and without ATR inhibitor (VE822) or ATM inhibitor (AZD1390). DNA damage signaling and cell cycle distribution were assayed by immunoblotting and flow cytometry, and radiosensitivity by clonogenic survival. IFN-{beta} secretion was measured by ELISA and STAT1 activation by immunoblotting. ResultsHigh-LET protons and carbon ions caused stronger activation of the DNA damage response compared to low-LET protons andX-rays at similar radiation dose. G2 checkpoint arrest was abrogated by the ATR inhibitor and prolonged by the ATM inhibitor after all radiation types. The inhibitors increased radiosensitivity, as measured after X- and carbon-ion-irradiation. ATR inhibition increased IFN signaling after both low-LET and high-LET irradiation in both cell lines. In T98G, IFN signaling was also enhanced by ATM inhibition. Notably, T98G cells secreted markedly more IFN-{beta} when the inhibitors were combined with high-LET compared to low-LET irradiation. ConclusionOur results show that ATR inhibition can increase IFN signaling after both X-, proton- and carbon-ion-irradiation. Additionally, IFN induction is strongly dependent on LET in one of the tested cell lines.

cancer biology↗