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Mitchell, D. K.

Publications and source records attributed to Mitchell, D. K..

2 recordsLinked to original sources

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↗

Design and Evaluation of PLGA-Based Nanocarriers for Targeted and Sustained Drug Delivery in Vascular Disorders

Vascular diseases, including atherosclerosis and vascular inflammation, have high incidence and mortality rates worldwide. Current drug therapies are limited by short circulation time, broad non-specific distribution, insufficient efficacy, and significant side effects. This study aimed to develop and optimize a targeted nanodrug delivery system based on poly(lactic-co-glycolic acid) (PLGA) to improve drug accumulation and therapeutic outcomes at vascular lesion sites. Nanoparticles prepared by the solvent evaporation-self-assembly method had an average diameter of 145.6 {+/-} 12.3 nm, a zeta potential of -21.4 {+/-} 3.7 mV, and showed uniform spherical morphology. The encapsulation efficiency (EE%) was 82.3 {+/-} 4.5%, and the drug loading (DL%) was 9.6 {+/-} 1.1%, indicating good drug-carrying ability. For surface modification, conjugation of ligands to the ends of PEG chains balanced the conflict between "stealth" and "affinity," maintaining circulation stability while restoring effective binding to vascular endothelial cells. Drug release experiments demonstrated a biphasic release profile in PBS (pH 7.4): about 40% was released within 0-12 h, and cumulative release reached 76.5 {+/-} 3.2% at 72 h. Kinetic analysis fitted the Higuchi model (R2 = 0.983), suggesting diffusion as the main driving mechanism. This predictable and controllable release behavior can provide both rapid effect in the acute phase and sustained therapy in the chronic phase. Overall, the PLGA nanocarrier system proposed in this study showed clear advantages in physicochemical properties, surface functionalization, and drug release kinetics. It can achieve prolonged circulation, high targeting efficiency, and controlled release in the treatment of vascular diseases. This work provides experimental evidence to overcome the limitations of conventional drug therapy and lays the foundation for developing multifunctional and clinically translatable nanodrug delivery platforms for personalized treatment.

bioengineering↗