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CUL5 is required for thalidomide-dependent inhibition of cellular proliferation
Bryan Kunkler1, Daniel Salamango1, Zachary J DeBruine1
1Department of Chemistry, Paul A. Schaap Science Center, Hope College, Holland, MI, United States of America.
Abstract:
Angiogenesis is essential for cancer metastasis, thus the discovery and characterization of molecules that inhibit this process is important. Thalidomide is a teratogenic drug which is known to inhibit angiogenesis and effectively inhibit cancer metastasis, yet the specific cellular targets for its effect are not well known. We discovered that CUL5 (previously identified as VACM-1), a scaffold protein in E3 ligase complexes, is involved in thalidomide-dependent inhibition of endothelial cell growth. Our results show that in human endothelial cells (HUVEC), thalidomide-dependent decrease in cell growth was associated with decreased nuclear localization of CUL5. In HUVEC transfected with anti-VACM-1 siRNA, thalidomide failed to decrease cell growth. Previously it was established that the antiproliferative effect of CUL5 is inhibited in rat endothelial cells (RAMEC) transfected with mutated CUL5 which is constitutively modified by NEDD8, a ubiquitin-like protein. In this study, the antiproliferative response to thalidomide was compromised in RAMEC expressing mutated CUL5. These results suggest that CUL5 protein is involved in the thalidomide-dependent regulation of cellular proliferation in vitro. Consequently, CUL5 may be an important part of the mechanism for thalidomide-dependent inhibition of cellular proliferation, as well as a novel biomarker for predicting a response to thalidomide for the treatment of disorders such as multiple myeloma and HIV infection.
Insights
Thalidomide inhibits cancer metastasis by affecting endothelial cell growth. Researchers found Cullin 5 (CUL5) protein is key to this thalidomide effect, suggesting it could predict treatment response.
Area of Science:
- Oncology
- Cell Biology
- Pharmacology
Background:
- Angiogenesis is crucial for cancer metastasis.
- Thalidomide inhibits angiogenesis and metastasis, but its cellular targets are unclear.
- Cullin 5 (CUL5), a scaffold protein, is implicated in E3 ligase complexes.
Purpose of the Study:
- To investigate the role of CUL5 in thalidomide's anti-angiogenic effects.
- To identify cellular targets of thalidomide's anti-metastatic properties.
Main Methods:
- Studied human umbilical vein endothelial cells (HUVEC) and rat aortic medial endothelial cells (RAMEC).
- Utilized siRNA to silence VACM-1 (CUL5) expression in HUVEC.
- Examined the effect of mutated CUL5 on thalidomide response in RAMEC.
Main Results:
- Thalidomide decreased HUVEC growth and nuclear localization of CUL5.
- Silencing CUL5 in HUVEC blocked thalidomide's anti-proliferative effect.
- Mutated CUL5 compromised the anti-proliferative response to thalidomide in RAMEC.
Conclusions:
- CUL5 is involved in thalidomide-dependent regulation of endothelial cell proliferation.
- CUL5 may be a mechanism for thalidomide's anti-proliferative action.
- CUL5 could serve as a biomarker for predicting thalidomide treatment response in multiple myeloma and HIV infection.
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