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Chu, C. C.

Publications and source records attributed to Chu, C. C..

2 recordsLinked to original sources

IL-1β/IRAK4 Axis Promotes Ovarian Tumor Development at the Mesothelium Injury Sites

Epithelial ovarian cancer (EOC) cells seed at mesothelial inflammation or injury sites. Lack of animal models recapitulating tumor cells seeding at inflamed sites in EOC hinders mechanistic studies and therapy developments. Here, we developed a non-surgical MIM (Mesothelium Inflammation/Injury Metastasis) model that recapitulates tumor cell seeding at inflamed sites. This model captures temporal changes in tumor immune microenvironment and tumor growth allowing for deeper mechanistic and preclinical therapeutic studies of EOC in-vivo. We show here that HGS-3 high-grade murine serous EOC cells seed at needle-induced injury sites in mesothelium/peritoneal wall, forming tumors both internally and protruding outward. Using MIM model, we found that deletion of IL1R1 in mice reduced EOC cell seeding at mesothelium injury/inflamed site in WT but not IL1ra-deficient mice. Treatment of MiM mice with a novel IRAK4 inhibitor we recently developed (UR241-2) revealed an essential role for IRAK4 signaling downstream IL-1{beta}/IL-1R1 in fostering an anti-tumor inflammatory environment, and reduced tumor burden. We conclude that IRAK4 inhibitors can be more effective than IL-1/IL-1R1 targeting agents to control metastasis and peritoneal tumors, an unmet medical need in EOC recurrence. Downregulation of extracellular matrix (ECM), upregulation of neutrophil activation genes, reduced cell adhesion and migration exhibit how UR241-2 corrects ECM and immune disorders in EOC, making it less conducive to metastasis and tumorigenesis.

cancer biology↗

Rapamycin increases murine lifespan but does not reduce mineral volume in the Matrix GLA Protein (MGP) knockout mouse model of medial arterial calcification.

Peripheral artery disease (PAD) is the narrowing of the arteries that carry blood to the lower extremities. PAD has been traditionally associated with atherosclerosis. However, recent studies have found that thrombotic events triggered by medial arterial calcification (MAC) is the primary cause of chronic limb ischemia below the knee. MAC is localized around the elastic fibers surrounding smooth muscle cells (SMCs) in arteries. Matrix GLA protein (MGP) binds circulating calcium and prevents hydroxyapatite mineral deposition, while also modulating proosteogenic signaling by attenuating BMP-2-mediated activation of Runx2 gene expression. Mgp-/- mice develop severe MAC and die around 8 weeks after birth due to aortic rupture or heart failure. We previously discovered a rare genetic disease Arterial Calcification due to Deficiency of CD73 (ACDC), in which patients present with extensive MAC in their lower extremity arteries. Using a patient-specific induced pluripotent stem cell model, we found that rapamycin inhibited calcification. Here we investigated whether rapamycin could reduce MAC in vivo using the Mgp-/- murine model. Mgp+/+ and Mgp-/- mice received 5mg/kg rapamycin or vehicle. Calcification content was assessed via microCT, and vascular morphology and extracellular matrix content were assessed histologically. Immunostaining and western blot analysis were used to examine SMC phenotype and extracellular matrix content. Rapamycin prolonged Mgp-/- mice lifespan, decreased mineral density in the arteries, maintained SMC contractile phenotype, and improved vessel structure, however, calcification volume was unchanged. Mgp-/- mice with SMC-specific deletion of Raptor or Rictor did not recapitulate treatment with rapamycin. These findings suggest rapamycin promotes beneficial vascular remodeling in vessels with MAC. NEWS AND NOTEWORTHYPeripheral artery disease (PAD) is associated with medial arterial calcification (MAC), which involves calcification of arterial elastic fibers and smooth muscle cells (SMCs). Matrix GLA protein (MGP) inhibits vascular calcification, and Mgp-/- mice develop severe MAC. Using this model, we found rapamycin prolonged lifespan, reduced arterial mineral density, maintained SMC contractile phenotype, and improved vessel structure, though calcification volume remained unchanged. Findings highlight rapamycins potential for vascular remodeling in MAC.

physiology↗