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Idrissou, M.

Publications and source records attributed to Idrissou, M..

3 recordsLinked to original sources

A MET-Targeted Variable New Antigen Receptor Theranostic for Non-Small Cell Lung Cancer

The MET receptor tyrosine kinase is mutated or amplified in [~]6% of non-small cell lung cancer (NSCLC) and overexpressed in [~]80% of all NSCLC cases. A theranostic agent that can both see and treat MET-altered NSCLC has never been described before in the literature. Here, we report a shark-derived single-domain variable new antigen receptor (VNAR) for MET with theranostic applications. Following the immunization of a juvenile nurse shark (Ginglymostoma cirratum) with the extracellular domain of human MET, we identified a VNAR clone that specifically engaged MET with high affinity. Engineering the lead VNAR into a bivalent human Fc, vMET1-Fc, yielded a construct that selectively targeted and was internalized by MET-positive cells without affecting cell viability or downstream MET signaling. When radiolabeled with the positron emitting isotope Zr-89, [89Zr]Zr-vMET1-Fc enabled longitudinal PET/CT imaging. High tumor uptake with low background was observed in MET-positive NSCLC xenografts administered [89Zr]Zr-vMET1-Fc. As a targeted beta-particle radiotherapy, [{superscript 1}Lu]Lu-vMET1-Fc resulted in marked tumor-growth delay and exhibited a favorable toxicity profile, collectively improving progression-free survival in NSCLC mouse models. Non-human primate PET/CT imaging studies with ([Zr]Zr-vMET1-Fc in healthy rhesus macaques confirmed favorable biodistribution and dosimetry, predictable clearance, and minimal off-target uptake. Additional blood chemistry analysis found no significant immune response or cytotoxicity. Together, these findings establish vMET1-Fc as a theranostic agent for imaging and treating MET-altered NSCLC. Statement of SignificanceA shark-derived antibody selectively targeting MET shows preclinical efficacy as a theranostic agent for MET-altered cancer.

cancer biology↗

Low Dose Radiation by Radiopharmaceutical Therapy Enhances GD2 TRAC-CAR T Cells Efficacy in Localized Neuroblastoma

BackgroundWhile chimeric antigen receptor (CAR) T cells have achieved significant success against hematological malignancies, efficacy against neuroblastoma has been limited. Virus-free CRISPR-edited GD2 TRAC-CAR T cells have been developed as a potential means of improving CAR T efficacy but are not curative. Radiopharmaceutical therapy (RPT) is a promising approach to enhance the effectiveness of immunotherapies, including immune checkpoint inhibitors. However, it remains unclear whether RPT can synergize with GD2 TRAC-CAR T cells to improve outcomes in neuroblastoma. MethodsDosimetry studies were conducted to measure the absorbed radiation dose delivered by lutetium-177 (177Lu) in both in vitro and in vivo models. Tumor-bearing mice were treated sequentially with low dose radiation by 177Lu-NM600, an alkylphosphocholine mimetic radiopharmaceutical agent, followed 9 days later by GD2 TRAC-CAR T cells generated in a virus-free manner by CRISPR/Cas9. Tumor burden was monitored through bioluminescence imaging and tumor size measurements. Mechanistic studies were performed using flow cytometry, multiplex assay and single-cell proteomic analysis. ResultsLow dose radiation delivered by 177Lu-NM600 synergized with GD2 TRAC-CAR T cells in a localized neuroblastoma model, resulting in complete tumor regression in all mice. The optimal combination was dependent on both the radiation dose and timing to minimize the negative impact of radiation on CAR T cell viability. Irradiation of neuroblastoma cells by low-dose RPT before GD2 TRAC-CAR T cells enhanced the release by CAR T cells of perforin, granzyme B and cytokines like TNF- and IL-7 while abrogating TGF-{beta}1 secretion. Additionally, low-dose RPT upregulated Fas on neuroblastoma cells, potentially enabling a CAR-independent killing. ConclusionsThis study demonstrates that low-dose RPT can enhance CAR T cell efficacy to treat a solid tumor. Findings suggest that optimization of radiation dose and timing may be needed for each patient and RPT to account for effects of varied tumor radiosensitivity and dosimetry. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=142 SRC="FIGDIR/small/621668v1_ufig1.gif" ALT="Figure 1"> View larger version (45K): org.highwire.dtl.DTLVardef@153ff5dorg.highwire.dtl.DTLVardef@1a269b7org.highwire.dtl.DTLVardef@1ca9a53org.highwire.dtl.DTLVardef@59f461_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

The Single-Stranded DNA-Binding Factor SUB1/PC4 Alleviates Replication Stress at Telomeres and is a Vulnerability of ALT Cancer Cells

AO_SCPLOWBSTRACTC_SCPLOWTo achieve replicative immortality, cancer cells must activate telomere maintenance mechanisms. In 10-15% of cancers, this is enabled by recombination-based alternative lengthening of telomeres pathways (ALT). ALT cells display several hallmarks including heterogeneous telomere length, extrachromosomal telomeric repeats and ALT-associated PML bodies. ALT cells also have high telomeric replication stress (RS) enhanced by fork-stalling structures (R-loops, G4s) and altered chromatin states. In ALT cells, telomeric RS promotes telomere elongation but above a certain threshold becomes detrimental to cell survival. Manipulating RS at telomeres has thus been proposed as a therapeutic strategy against ALT cancers. Through analysis of genome-wide CRISPR fitness screens, we identified ALT-specific vulnerabilities and describe here our characterization of the roles of SUB1, a ssDNA-binding protein, as a novel regulator of telomere stability. SUB1 depletion further increases RS at ALT telomeres, profoundly impairing ALT cell growth without impacting telomerase-positive cancer cells. During RS, SUB1 is recruited to stalled forks and ALT telomeres via its ssDNA-binding domain. This recruitment is potentiated by RPA depletion, suggesting that these factors may compete for ssDNA. The viability of ALT cells and their resilience towards RS also requires ssDNA-binding by SUB1. SUB1 depletion accelerates cell death induced by FANCM depletion, triggering unsustainable levels of telomeric damage specifically in ALT cells. Finally, combining SUB1 depletion with RS-inducing drugs rapidly induces replication catastrophe in ALT cells. Altogether, our work identifies SUB1 as a new ALT susceptibility with important roles in the mitigation of RS at ALT telomeres and suggests new therapeutic strategies for a host of still poorly managed cancers. SO_SCPLOWIGNIFICANCEC_SCPLOW SO_SCPLOWTATEMENTC_SCPLOWCurrently, there are few treatment options for ALT cancers with chemotherapy still occupying center stage despite often limited efficacy. ALT cancer cells experience high levels of replication stress at telomeres and its enhancement (e.g. via ATR inhibition) is a promising therapeutic strategy. Sensitivity to ATR inhibition varies amongst ALT cell lines/tumors warranting the development of additional ways to modulate telomeric replication stress. Here we identify SUB1, a single-stranded DNA-binding protein, as a vulnerability of ALT cells. SUB1 localizes to ALT telomeres and mitigates deleterious replication stress. SUB1 depletion synergizes with ATR inhibition and FANCM downregulation suggesting that co-targeting SUB1 with other regulators of replication stress at telomeres may kill ALT cancer cells more effectively.

cancer biology↗