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Published on: March 30, 2019
SmgGDS-558 regulates the cell cycle in pancreatic, non-small cell lung, and breast cancers
Nathan J Schuld1, Andrew D Hauser1, Adam J Gastonguay2
1Department of Pharmacology and Toxicology; Medical College of Wisconsin; Milwaukee, WI USA.
Abstract:
Oncogenic mutation or misregulation of small GTPases in the Ras and Rho families can promote unregulated cell cycle progression in cancer. Post-translational modification by prenylation of these GTPases allows them to signal at the cell membrane. Splice variants of SmgGDS, named SmgGDS-607 and SmgGDS-558, promote the prenylation and membrane trafficking of multiple Ras and Rho family members, which makes SmgGDS a potentially important regulator of the cell cycle. Surprisingly little is known about how SmgGDS-607 and SmgGDS-558 affect cell cycle-regulatory proteins in cancer, even though SmgGDS is overexpressed in multiple types of cancer. To examine the roles of SmgGDS splice variants in the cell cycle, we compared the effects of the RNAi-mediated depletion of SmgGDS-558 vs. SmgGDS-607 on cell cycle progression and the expression of cyclin D1, p27, and p21 in pancreatic, lung, and breast cancer cell lines. We show for the first time that SmgGDS promotes proliferation of pancreatic cancer cells, and we demonstrate that SmgGDS-558 plays a greater role than SmgGDS-607 in cell cycle progression as well as promoting cyclin D1 and suppressing p27 expression in multiple types of cancer. Silencing both splice variants of SmgGDS in the cancer cell lines produces an alternative signaling profile compared with silencing SmgGDS-558 alone. We also show that loss of both SmgGDS-607 and SmgGDS-558 simultaneously decreases tumorigenesis of NCI-H1703 non-small cell lung carcinoma (NSCLC) xenografts in mice. These findings indicate that SmgGDS promotes cell cycle progression in multiple types of cancer, making SmgGDS a valuable target for cancer therapeutics.
Insights
SmgGDS splice variants promote cancer cell proliferation by regulating cell cycle proteins. SmgGDS-558 is more critical than SmgGDS-607, and targeting both reduces tumor growth.
Area of Science:
- Cell Biology
- Molecular Oncology
- Cancer Therapeutics
Background:
- Small GTPases (Ras, Rho families) are key regulators of cell cycle progression.
- Prenylation is crucial for GTPase membrane localization and signaling.
- SmgGDS splice variants (SmgGDS-607, SmgGDS-558) facilitate GTPase prenylation and trafficking, impacting cell cycle regulation.
Purpose of the Study:
- To investigate the role of SmgGDS splice variants in cancer cell cycle progression.
- To compare the effects of SmgGDS-558 and SmgGDS-607 depletion on cell cycle regulators.
- To assess the therapeutic potential of targeting SmgGDS in cancer.
Main Methods:
- RNA interference (RNAi)-mediated depletion of SmgGDS-558 and SmgGDS-607 in pancreatic, lung, and breast cancer cell lines.
- Analysis of cell cycle progression and expression of cyclin D1, p27, and p21.
- Evaluation of tumor growth in non-small cell lung carcinoma (NSCLC) xenografts.
Main Results:
- SmgGDS promotes proliferation in pancreatic cancer cells.
- SmgGDS-558 significantly impacts cell cycle progression, cyclin D1 expression, and p27 suppression more than SmgGDS-607.
- Simultaneous silencing of both SmgGDS variants alters signaling profiles and reduces NSCLC xenograft tumorigenesis.
Conclusions:
- SmgGDS splice variants are critical regulators of cell cycle progression in multiple cancer types.
- SmgGDS-558 plays a dominant role in promoting cancer cell proliferation.
- SmgGDS represents a promising therapeutic target for various cancers.
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