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Published on: June 15, 2018
Unraveling the Impact of KRAS Accessory Proteins on Oncogenic Signaling Pathways
Vanshika Garg1, Raphael N H M Hofmann1, Moazzam Saleem1
1Institute of Biochemistry and Molecular Biology II, Medical Faculty, Heinrich Heine University Düsseldorf, Universitätsstrasse 1, Building 22.03, 40225 Düsseldorf, Germany.
Abstract:
The oncogene KRAS drives tumor growth by activating pathways such as MAPK and PI3K-AKT in a constitutive manner. Although direct KRAS inhibitors exist, they are often limited in clinical use due to therapeutic resistance and toxicity. Therefore, alternative combinatorial therapeutic strategies are urgently needed. This study examined the knockout of five KRAS-related proteins-galectin-3 (GAL3), phosphodiesterase delta (PDEδ), nucleophosmin (NPM1), IQ motif-containing GTPase-activating protein 1 (IQGAP1), and SHOC2-using CRISPR-Cas9 in adenocarcinoma cell lines harboring the KRAS(G12V) oncogenic mutation, as well as in the noncancerous HEK-293 cell line. These proteins act as critical modulators that regulate KRAS activity, cellular localization, and that of its downstream signaling components. We analyzed the downstream activation of ERK and AKT kinases and evaluated subsequent cancer cell proliferation. Knockout of GAL3 and PDEδ was highly effective, significantly reducing MAPK and PI3K-AKT pathway activity and substantially impairing cell proliferation. SHOC2 knockout selectively and potently disrupted MAPK activation, while NPM1 knockout resulted in the complex, reciprocal modulation of the two major pathways. Notably, knocking out IQGAP1 enhanced PI3K-AKT and mTORC2-AKT signaling without affecting the MAPK pathway. These distinct modulatory roles highlight the non-redundant functions of the accessory proteins. In conclusion, our findings establish GAL3 and PDEδ, two KRAS-associated proteins, as promising combinatorial drug targets. Targeting these modulators provides an effective alternative strategy to overcome resistance mechanisms and enhance the clinical utility of existing KRAS inhibitors.
Insights
Targeting KRAS-associated proteins galectin-3 (GAL3) and phosphodiesterase delta (PDEδ) with CRISPR-Cas9 effectively reduces cancer cell proliferation by inhibiting key signaling pathways. This offers a promising strategy to overcome resistance to KRAS inhibitors.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The KRAS oncogene drives tumor growth via MAPK and PI3K-AKT pathways.
- Direct KRAS inhibitors face limitations due to resistance and toxicity.
- Novel combinatorial therapies are crucial for effective cancer treatment.
Purpose of the Study:
- To investigate the role of five KRAS-related proteins (GAL3, PDEδ, NPM1, IQGAP1, SHOC2) as potential drug targets.
- To evaluate the impact of knocking out these proteins on KRAS-driven signaling pathways and cancer cell proliferation.
- To identify effective combinatorial strategies for KRAS-mutated cancers.
Main Methods:
- CRISPR-Cas9 gene editing was used to knock out GAL3, PDEδ, NPM1, IQGAP1, and SHOC2 in KRAS(G12V) adenocarcinoma cell lines.
- Downstream activation of ERK (MAPK pathway) and AKT (PI3K-AKT pathway) kinases was analyzed.
- Cancer cell proliferation was assessed following gene knockouts.
Main Results:
- Knockout of GAL3 and PDEδ significantly reduced MAPK and PI3K-AKT pathway activity, impairing cell proliferation.
- SHOC2 knockout selectively inhibited MAPK activation.
- NPM1 knockout showed complex pathway modulation, while IQGAP1 knockout enhanced PI3K-AKT signaling.
Conclusions:
- GAL3 and PDEδ are critical modulators of KRAS signaling and are promising targets for combinatorial therapy.
- Targeting these KRAS-associated proteins offers a strategy to overcome resistance and improve KRAS inhibitor efficacy.
- The distinct roles of these accessory proteins highlight their non-redundant functions in cancer.
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