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Biology subjects

Hinojosa, A. Q.

Publications and source records attributed to Hinojosa, A. Q..

2 recordsLinked to original sources

Inhibition of Yes-Associated Protein (YAP) with Verteporfin Enhances Radiosensitivity in Chordoma by Inducing G2M Arrest and Inhibiting the DNA Damage Response

Chordomas are locally invasive cancers that are highly resistant to radiotherapy. The Brachyury and Yes-Associated Protein (YAP) regulatory axis has been implicated as the primary driver of tumorigenicity in chordoma. Here, we aimed to enhance chordoma radiosensitivity by repurposing the FDA-approved YAP inhibitor, Verteporfin. We used five patient-derived chordoma cell lines and generated two YAP1 knockdown cell lines to validate the YAP-targeting phenotype in chordoma. Verteporfin treatment reduced the expression of DNA damage repair proteins and genes. YAP inhibition with either verteporfin or YAP knockdown resulted in enhanced DNA double-stranded breaks after radiation via inhibition of the DNA damage repair pathway and accumulation of cells in the G2M phase. Verteporfin inhibited chordoma tumor growth alone and in combination with radiation in a xenograft mouse model treated with verteporfin loaded microparticles, resulting in sensitization of chordoma tumors to radiation. YAP inhibition with verteporfin renders chordoma more sensitive to radiation via inhibition of the DNA damage repair cascade and accumulation of cells in G2M when they are most susceptible to radiation damage.

cancer biology↗

Patient-Derived Organoids Recapitulate Intrinsic Immune Landscapes and Progenitor Populations of Glioblastoma.

Glioblastoma stem cells (GSCs) are highly self-renewing, resistant to therapy, and are able to form lethal tumors1, 2. Tumor organoids have been developed to study tumor evolution1-4, and while GSCs can form organoids for glioblastoma multiforme, our understanding of their intrinsic immune, metabolic, genetic, and molecular programs is limited. To address this, we deeply characterized GSC-derived GBM organoids using a modified protocol (GBMOsm) from several patient-derived GSCs and found they develop into complex 3D tissues with unique self-organization, cancerous metabolic states, and burdensome genetic landscapes. We discovered that GBMOsc recapitulate the presence of two important cell populations thought to drive GBM progression, SATB2+ and HOPX+ progenitors. Despite being devoid of immune cells, transcriptomic analysis across GBMOsc revealed an immune-like molecular program, enriched in cytokine, antigen presentation and processing, T-cell receptor inhibitors, and interferon genes. We determined that SATB2+ and HOPX+ populations contribute to this immune and interferon landscape in GBM in vivo and GBMOsm. Our work deepens our understanding of the intrinsic molecular and cellular architecture of GSC-derived GBMO and defines a novel GBMOsc intrinsic immune-like program.

neuroscience↗