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Published on: March 10, 2023
Splice switching an oncogenic ratio of SmgGDS isoforms as a strategy to diminish malignancy
Anthony C Brandt1,2, Lisa McNally3, Ellen L Lorimer1,2
1Department of Pharmacology and Toxicology, Medical College of Wisconsin, Milwaukee, WI 53226.
Abstract:
The chaperone protein SmgGDS promotes cell-cycle progression and tumorigenesis in human breast and nonsmall cell lung cancer. Splice variants of SmgGDS, named SmgGDS-607 and SmgGDS-558, facilitate the activation of oncogenic members of the Ras and Rho families of small GTPases through membrane trafficking via regulation of the prenylation pathway. SmgGDS-607 interacts with newly synthesized preprenylated small GTPases, while SmgGDS-558 interacts with prenylated small GTPases. We determined that cancer cells have a high ratio of SmgGDS-607:SmgGDS-558 (607:558 ratio), and this elevated ratio is associated with reduced survival of breast cancer patients. These discoveries suggest that targeting SmgGDS splicing to lower the 607:558 ratio may be an effective strategy to inhibit the malignant phenotype generated by small GTPases. Here we report the development of a splice-switching oligonucleotide, named SSO Ex5, that lowers the 607:558 ratio by altering exon 5 inclusion in SmgGDS pre-mRNA (messenger RNA). Our results indicate that SSO Ex5 suppresses the prenylation of multiple small GTPases in the Ras, Rho, and Rab families and inhibits ERK activity, resulting in endoplasmic reticulum (ER) stress, the unfolded protein response, and ultimately apoptotic cell death in breast and lung cancer cell lines. Furthermore, intraperitoneal (i.p.) delivery of SSO Ex5 in MMTV-PyMT mice redirects SmgGDS splicing in the mammary gland and slows tumorigenesis in this aggressive model of breast cancer. Taken together, our results suggest that the high 607:558 ratio is required for optimal small GTPase prenylation, and validate this innovative approach of targeting SmgGDS splicing to diminish malignancy in breast and lung cancer.
Insights
Targeting SmgGDS splicing with SSO Ex5 lowers the 607:558 ratio, suppressing cancer cell growth. This approach inhibits small GTPase prenylation and induces apoptosis, offering a novel strategy against breast and lung cancers.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- The chaperone protein SmgGDS promotes cell-cycle progression and tumorigenesis in breast and lung cancers.
- SmgGDS splice variants (SmgGDS-607 and SmgGDS-558) regulate small GTPase activation via the prenylation pathway.
- An elevated SmgGDS-607:SmgGDS-558 ratio is linked to reduced survival in breast cancer patients.
Purpose of the Study:
- To investigate the role of SmgGDS splicing in cancer.
- To develop a therapeutic strategy targeting SmgGDS splicing to inhibit cancer progression.
- To evaluate the efficacy of a splice-switching oligonucleotide (SSO Ex5) in preclinical models.
Main Methods:
- Development of SSO Ex5 to alter exon 5 inclusion in SmgGDS pre-mRNA.
- Assessment of SSO Ex5's impact on small GTPase prenylation and signaling pathways (e.g., ERK).
- Evaluation of SSO Ex5-induced cellular responses (ER stress, UPR, apoptosis) in cancer cell lines.
- In vivo studies using MMTV-PyMT mice to assess SSO Ex5's effect on tumorigenesis.
Main Results:
- SSO Ex5 effectively lowered the SmgGDS-607:SmgGDS-558 ratio.
- SSO Ex5 suppressed prenylation of Ras, Rho, and Rab family GTPases and inhibited ERK activity.
- SSO Ex5 induced ER stress, unfolded protein response, and apoptosis in cancer cells.
- SSO Ex5 administration in mice slowed mammary gland tumorigenesis.
Conclusions:
- The high SmgGDS-607:SmgGDS-558 ratio is crucial for optimal small GTPase prenylation and cancer malignancy.
- Targeting SmgGDS splicing with SSO Ex5 is a validated approach to diminish breast and lung cancer.
- SSO Ex5 demonstrates therapeutic potential by inhibiting key oncogenic pathways and inducing cancer cell death.
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