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Wenyu Wang

Publications and source records attributed to Wenyu Wang.

2 recordsLinked to original sources

Subchronic benzo[a]pyrene exposure disrupts APOE4-regulated lipid metabolism to induce Tau hyperphosphorylation and cognitive deficits.

BACKGROUND: Benzo[a]pyrene (B[a]P) is both a carcinogen and a potent neurotoxic pollutant. Despite growing evidence linking B[a]P to neurological dysfunction, the responsible mechanisms have not been elucidated. METHODS: Here, we employed human apolipoprotein E4 (hAPOE4) transgenic mice and APOE knockout (APOE-KO) mice to evaluate the influence of APOE on B[a]P-mediated neurotoxicity. hAPOE4 mice overexpress the human APOE4 isoform, whereas APOE-KO mice lack APOE expression; wild-type C57BL/6 J mice served as controls. Animals received intraperitoneal injections of B[a]P at 0, 2.5, or 6.25 mg/kg on alternate days for 3 months. Spatial memory and learning were examined via Morris Water Maze (MWM). Neuronal morphology, including dendritic branching and spine density in the CA1 region of the hippocampus and dentate gyrus (DG), was assessed using Golgi-Cox staining. Neurofibrillary tangles were detected by silver glycine staining. Tau, phosphorylated Tau (Ser199 and Ser396), and LRP1 were evaluated using Western blot and immunohistochemical analyses. Chromatin immunoprecipitation PCR (ChIP-PCR) was undertaken to examine the regulation of APOE4 expression by the aryl hydrocarbon receptor (AHR). In addition, both untargeted metabolomics and lipidomics analyses were conducted following B[a]P exposure. RESULTS: B[a]P led to pronounced impairments in mouse spatial memory and learning, shown by greater escape latency, less time in the target quadrant, and a decreased number of platform crossings in MWM tests. Structural analyses revealed a significant reduction in dendritic branching within the hippocampal CA1 and DG regions. These neurobehavioral and morphological deficits were most severe in hAPOE4 mice, which displayed greater cognitive impairment and more extensive dendritic loss than B[a]P-treated wild-type mice, indicating that APOE4 amplifies B[a]P-induced neurotoxicity. ChIP assays demonstrated that B[a]P modulates APOE4 transcription through AHR-dependent mechanisms. Additionally, metabolomics and lipidomics analyses revealed widespread B[a]P-induced metabolic remodeling, suggesting that disrupted lipid metabolism and altered neuronal membrane integrity may contribute to the observed neurotoxicity and cognitive dysfunction. CONCLUSION: Collectively, the results indicate that B[a]P-mediated neurotoxicity may be facilitated, at least in part, by APOE4-dependent dysregulation of lipid metabolic pathways.

Animals

Hepatocyte-derived LRG1 primes the liver for metastasis and impairs immunotherapy.

The liver undergoes active remodeling by the primary tumor prior to metastatic spread. However, the mechanisms by which hepatocytes dictate the liver-specific tropism of tumors remain elusive. Here, we identify hepatocyte-derived leucine-rich alpha-2-glycoprotein 1 (LRG1) as a key mediator of liver premetastatic niche (PMN) formation. Clinically, elevated serum LRG1 levels are correlated with an increased risk of liver metastasis in patients and multiple mouse models. Mechanistically, LRG1 remodels the hepatic microenvironment by driving immunosuppressive neutrophil accumulation, impairing the function of effector T cells and dendritic cells, and enhancing angiogenesis in the liver, thereby fostering a prometastatic landscape. Hepatocyte-specific ablation of LRG1 dampens premetastatic niche formation and significantly reduces the metastatic burden in vivo. Hepatic LRG1 induced by tumor-associated inflammation via IL-6/STAT3 signaling promotes liver metastasis through the formation of TGFBR/PI3K/AKT axis-driven neutrophil extracellular traps (NETs). Importantly, therapeutic blockade of LRG1 not only suppressed liver metastasis but also reprogrammed the hepatic niche toward an immune-activated state, sensitizing tumors to anti-PD-1 therapy. Collectively, our findings reveal a hepatocyte-LRG1 axis that drives liver premetastatic niche remodeling and highlight LRG1 as a promising target for the prevention and treatment of liver metastasis.

Animals