Dicyclohexyl phthalate (DCHP) is a widely used plasticizer, but its potential impact on immunity remains largely unexplored. In this study, synchronized L1-stage Caenorhabditis elegans were exposed to 0.0001–0.1 g/L DCHP for 72 h to investigate the effects of chronic early-life exposure on innate immunity; 0.01 and 0.1 g/L were used for subsequent mechanistic analyses. Innate immune function was evaluated using Pseudomonas aeruginosa PA14 survival assays, RT-qPCR, mutant strains, and oxidative-stress-related measurements. Chronic exposure beginning at the L1 stage significantly reduced the survival of C. elegans infected with Pseudomonas aeruginosa PA14. This immunosuppression was associated with increased daf-2 and age-1 transcript levels and reduced daf-16 transcript levels, indicating transcriptional alterations in insulin-like signaling-related genes. Additionally, the expression of pmk-1, nsy-1, and sek-1, key components of the p38 MAPK pathway, was markedly downregulated. Survival assays using different mutants supported the involvement of insulin-like signaling- and p38 MAPK-related genes in the decline in innate immunity following DCHP exposure. Furthermore, DCHP exposure reduced the expression of stress resistance genes, including skn-1, and several antioxidant enzymes. These findings suggest that DCHP may impair innate immune function through transcriptional alterations in immune- and stress-response pathways, although direct pathway activation or inhibition was not demonstrated.
Yuxuan Li, Siyuan Luo, Ming-Dian Lei et al.· Toxics· 0 citations
High-precision tumor theranostic systems capable of real time monitoring are imperatively required for optimizing the spatial targeting accuracy during radiotherapy and surgical resection across clinical management of nasopharyngeal carcinoma (NPC). However, the clinical application of photodynamic therapy (PDT) is impeded by the suboptimal reactive oxygen species (ROS) generation efficiency and inadequate visualization of redox procedure. In this study, we developed a theranostic platform HSF, featuring integrated tumor-specific near-infrared (NIR) fluorescence imaging and photodynamic ROS generation for real time monitoring and targeted radiotherapy of solid malignancies for NPC. Mechanistically, HSF was initially activated by the elevated glutathione (GSH) levels in the tumor microenvironment, which concomitantly turned on its NIR fluorescence and photodynamic properties. The resulting NIR fluorescence allowed for tumor visualization, while the PDT-triggered oxidative stress further consumed intracellular GSH, thereby ultimately inducing ferroptosis. In NPC cell-derived xenograft models, HSF demonstrated exceptional biocompatibility and effective in vivo retention. This multifunctional photosensitizer enabled precise radiotherapy navigation via real time fluorescent monitoring and ferroptosis-mediated therapeutic mechanisms, offering a transformative approach for real time visualization-guided NPC therapy.
Fan Zheng, Yan Mo, Jingmei Zhou et al.· Small· 0 citations