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Updated: Feb 7, 2026

Dual Bioluminescence Imaging of Tumor Progression and Angiogenesis
Published on: August 1, 2019
Curcumin analog, GO-Y078, overcomes resistance to tumor angiogenesis inhibitors
Kazuhiro Shimazu1, Masahiro Inoue1, Shunsuke Sugiyama2
1Department of Clinical Oncology, Graduate School of Medicine, Akita University, Akita, Japan.
Abstract:
Tumor angiogenesis inhibition is one of the most potent strategies in cancer chemotherapy. From past clinical studies, inhibition of the vascular endothelial growth factor pathway successfully treats malignant tumors. However, vascular endothelial growth factor inhibitors alone cannot cure tumors. Moreover, resistance to small molecule inhibitors has also been reported. Herein, we show the antiangiogenic potential of a newly synthesized curcumin analog, GO-Y078, that possibly functions through inhibition of actin stress fiber formation, resulting in mobility inhibition; this mechanism is different from that of vascular endothelial growth factor inhibition. In addition, we examined the detailed mechanism of action of the antiangiogenesis potential of GO-Y078 using human umbilical venous epithelial cells resistant to angiogenesis inhibitors (HUVEC-R). GO-Y078 inhibited the growth and mobility of HUVEC-R at 0.75 μmol/L concentration. Expression analyses by microarray and RT-PCR showed that expressions of genes including that of fibronectin 1 were significantly suppressed. Among these genes, fibronectin 1 is abundantly expressed and, therefore, seems to be a good target for GO-Y078. In a knockdown experiment using Si-oligo of fibronectin 1 (FN1), FN1 expression was decreased to half of that in mock experiments as well as GO-Y078. Knockdown of FN1 resulted in the suppression of HUVEC-R growth at 24 hours after treatment. Fibronectin is a key molecule contributing to angiogenesis that could be inhibited by GO-Y078. Thus, resistance to vascular endothelial growth factor inhibition can be overcome using GO-Y078.
Insights
A novel curcumin analog, GO-Y078, demonstrates potent antiangiogenic effects by inhibiting fibronectin 1 expression and cell mobility. This compound offers a potential strategy to overcome resistance to vascular endothelial growth factor inhibitors in cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Tumor angiogenesis inhibition is a key cancer chemotherapy strategy.
- Vascular endothelial growth factor (VEGF) pathway inhibitors show efficacy but face limitations like resistance.
- Novel therapeutic approaches are needed to overcome VEGF inhibitor resistance.
Purpose of the Study:
- To investigate the antiangiogenic potential of a new curcumin analog, GO-Y078.
- To elucidate the mechanism of action of GO-Y078, particularly in angiogenesis inhibitor-resistant cells.
- To evaluate GO-Y078 as a potential therapeutic agent against resistant tumors.
Main Methods:
- Synthesis and characterization of curcumin analog GO-Y078.
- Assessment of GO-Y078's effect on human umbilical venous epithelial cells resistant to angiogenesis inhibitors (HUVEC-R) growth and mobility.
- Gene expression analysis using microarray and RT-PCR.
- Fibronectin 1 (FN1) knockdown experiments using Si-oligo.
Main Results:
- GO-Y078 inhibited HUVEC-R growth and mobility at 0.75 μmol/L.
- GO-Y078 significantly suppressed the expression of genes including fibronectin 1.
- Knockdown of fibronectin 1 mimicked GO-Y078's effect, suppressing HUVEC-R growth.
Conclusions:
- GO-Y078 exhibits antiangiogenic properties through a mechanism distinct from VEGF inhibition, potentially by targeting actin stress fiber formation.
- Fibronectin 1 is identified as a key molecular target of GO-Y078 in angiogenesis.
- GO-Y078 shows promise in overcoming resistance to existing VEGF-targeted therapies.
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