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A Cancer Cell Spheroid Assay to Assess Invasion in a 3D Setting
Published on: November 20, 2015
StarD13 differentially regulates migration and invasion in prostate cancer cells
Leila Jaafar1, Isabelle Fakhoury1, Sahar Saab1
1Department of Natural Sciences, School of Arts and Sciences, Lebanese American University, Chouran, P.O. Box 13-5053, Beirut, 1102 2801, Lebanon.
Abstract:
Prostate cancer is the second most commonly diagnosed cancer in men and one of the main leading causes of cancer deaths among men worldwide. Rapid uncontrolled growth and the ability to metastasize to other sites are key hallmarks in cancer development and progression. The Rho family of GTPases and its activators the GTPase-activating proteins (GAPs) are required for regulating cancer cell proliferation and migration. StarD13 is a GAP for Rho GTPases, specifically for RhoA and Cdc42. We have previously shown that StarD13 acts as a tumor suppressor in astrocytoma as well as breast and colorectal cancer. In this study, we performed a functional comparative analysis of StarD13 targets/and or interacting molecules to understand the general role that StarD13 plays in cancers. Our data highlight the importance of StarD13 in modulating several hallmarks of cancer. Findings from database mining and immunohistochemistry revealed that StarD13 is underexpressed in prostate cancers, in addition knocking down Stard13 increased cancer cell proliferation, consistent with its role as a tumor suppressor. Stard13 depletion, however, led to an increase in cell adhesion, which inhibited 2D cell migration. Most interestingly, StarD13 depletion increases invasion and matrix degradation, at least in part, through its regulation of Cdc42. Altogether, the data presented suggest that StarD13 acts as a tumor suppressor inhibiting prostate cancer cell invasion.
Insights
StarD13 acts as a tumor suppressor in prostate cancer. Its reduced expression promotes cancer cell proliferation and invasion, highlighting its role in inhibiting cancer progression.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Prostate cancer is a leading cause of cancer death globally.
- Rho GTPases and GTPase-activating proteins (GAPs) regulate cancer cell growth and metastasis.
- StarD13, a GAP for Rho GTPases (RhoA, Cdc42), has demonstrated tumor suppressor activity in other cancers.
Purpose of the Study:
- To investigate the role of StarD13 in prostate cancer.
- To understand the general function of StarD13 in cancer by analyzing its targets and interacting molecules.
Main Methods:
- Database mining and immunohistochemistry to assess StarD13 expression in prostate cancer.
- Experimental manipulation of StarD13 levels (knockdown) to observe effects on cancer cell behavior.
Main Results:
- StarD13 is underexpressed in prostate cancers.
- StarD13 knockdown increased prostate cancer cell proliferation.
- StarD13 depletion enhanced cell adhesion, inhibiting 2D migration but increasing invasion and matrix degradation, partly via Cdc42 regulation.
Conclusions:
- StarD13 functions as a tumor suppressor in prostate cancer.
- The data suggest StarD13 inhibits prostate cancer cell invasion and matrix degradation.
- StarD13 plays a significant role in modulating key cancer hallmarks.
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