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Beach, C. J.

Publications and source records attributed to Beach, C. J..

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ZNF423 depletion induces the integrated stress response and represents a potential vulnerability in NF1-associated MPNST

Malignant peripheral nerve sheath tumors (MPNST) are aggressive sarcomas with limited systemic therapies and represent the leading cause of mortality for individuals with neurofibromatosis type 1 (NF1). Malignant progression can reactivate developmental precursor programs that are largely absent from normal nerve and benign tumors, creating tumor-selective vulnerabilities. Zinc finger protein 423 (ZNF423; also known as OAZ/ROAZ) is a developmentally regulated transcription factor that delays olfactory precursor differentiation and has been implicated in B-cell malignancy. Here, we asked whether ZNF423 is reactivated and functionally required in NF1-associated MPNST. In genetically defined models, Nf1 loss reduced Zfp423 in a benign tumor cell-of-origin context, whereas combined Nf1 and Cdkn2a loss induced marked Zfp423 upregulation during transformation. ZNF423 depletion impaired DNA synthesis and proliferation, induced DNA damage signaling, and activated the integrated stress response (ISR), increasing sensitivity to cytotoxic agents. In an orthotopic MPNST model, shRNA-mediated suppression of ZNF423 reduced tumor initiation in vivo; however, tumors that eventually emerged showed restoration of ZNF423 expression. ZNF423 is developmentally restricted in the peripheral nerve lineage yet elevated in MPNST, with single-cell analyses of patient nerve sheath tumors revealing localized expression restricted to malignant cells rather than SOX10-positive benign tumor cells. These data identify ZNF423 as a putative malignant biomarker, a potential dependency in NF1-MPNST, and nominate downstream stress and genome maintenance pathways as cooperative therapeutic vulnerabilities. STATEMENT OF SIGNIFICANCEZNF423 is a developmentally restricted transcription factor selectively reactivated in NF1-associated malignant peripheral nerve sheath tumors. Targeted ablation triggers the integrated stress response, impairs DNA synthesis, sensitizes cells to chemotherapy and PARP inhibition, and restricts in vivo growth. ZNF423 represents a candidate biomarker and therapeutic vulnerability in this aggressive sarcoma.

cancer biology↗

Optimization and Characterization of SHIP1 Ligands for Cellular Target Engagement and Activity in Alzheimer's Disease Models

Src homology 2 domain-containing inositol 5-phosphatase 1 (SHIP1), encoded by the gene INPP5D, is a lipid phosphatase that negatively regulates immune receptor signaling in hematopoietic cells and microglia. Here, we describe a pyridyl-pyrazole-piperidine scaffold and the lead compound 3-((2-chlorobenzyl)oxy)-5-(1-(piperidin-4-yl)-1H-pyrazol-4-yl)pyridine (32), which demonstrates SHIP1 target engagement, brain exposure, and evidence of a central pharmacodynamic response in vivo. Structure-activity relationship studies, guided by biochemical and cellular assays using multiple human and murine protein constructs and cells, identified SHIP1-active ligands. A thermal shift assay using full-length SHIP1 was used to assess compounds for cellular target engagement, while studies in IL-4 conditioned THP-1 cells was used to demonstrate changes in downstream AKT signaling. Targeted lipidomics revealed changes in the overall phosphoinositide pool consistent with SHIP1 target engagement and reduction of phospho-AKT levels. In a protein-lipid overlay assay, compound 32 induced changes in the relative association of SHIP1 with multiple phosphatidylinositols on a membrane surface. In high-content cellular imaging assays, compound 32 enhanced the uptake of myelin/membrane debris and fibrillar amyloid by primary murine microglia, phenocopying a genetic model with reduced SHIP1 expression. Finally, oral administration of compound 32 resulted in brain exposure sufficient to alter gene expression and reduce IL-1{beta} levels as pharmacodynamic markers of microglial activation and neuroinflammation in an amyloidosis mouse model of Alzheimers disease. Collectively, these results define a scaffold with SHIP1 target engagement, CNS exposure, and in vivo activity, providing a foundation for the optimization of brain-penetrant SHIP1 ligands suitable for further mechanistic studies and therapeutic development for the treatment of Alzheimers disease.

pharmacology and toxicology↗