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Published on: October 8, 2015
2'-Deoxy Guanosine Nucleotides Alter the Biochemical Properties of Ras
Sangho D Yun1, Elena Scott1, Zahra Moghadamchargari1
1Department of Chemistry, Texas A&M University, College Station, Texas 77843, United States.
Abstract:
Ras proteins in the mitogen-activated protein kinase (MAPK) signaling pathway represent one of the most frequently mutated oncogenes in cancer. Ras binds guanosine nucleotides and cycles between active (GTP) and inactive (GDP) conformations to regulate the MAPK signaling pathway. Guanosine and other nucleotides exist in cells as either 2'-hydroxy or 2'-deoxy forms, and imbalances in the deoxyribonucleotide triphosphate pool have been associated with different diseases, such as diabetes, obesity, and cancer. However, the biochemical properties of Ras bound to dGNP are not well understood. Herein, we use native mass spectrometry to monitor the intrinsic GTPase activity of H-Ras and N-Ras oncogenic mutants, revealing that the rate of 2'-deoxy guanosine triphosphate (dGTP) hydrolysis differs compared to the hydroxylated form, in some cases by seven-fold. Moreover, K-Ras expressed from HEK293 cells exhibited a higher than anticipated abundance of dGNP, despite the low abundance of dGNP in cells. Additionally, the GTPase and dGTPase activity of K-RasG12C was found to be accelerated by 10.2- and 3.8-fold in the presence of small molecule covalent inhibitors, which may open opportunities for the development of Pan-Ras inhibitors. The molecular assemblies formed between H-Ras and N-Ras, including mutant forms, with the catalytic domain of SOS (SOScat) were also investigated. The results show that the different mutants of H-Ras and N-Ras not only engage SOScat differently, but these assemblies are also dependent on the form of guanosine triphosphate bound to Ras. These findings bring to the forefront a new perspective on the nucleotide-dependent biochemical properties of Ras that may have implications for the activation of the MAPK signaling pathway and Ras-driven cancers.
Insights
Ras proteins are key in cancer signaling. This study reveals differences in how Ras binds deoxyguanosine triphosphate (dGTP) versus guanosine triphosphate (GTP), impacting MAPK pathway regulation and cancer development.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Ras proteins are central to the MAPK signaling pathway and frequently mutated in cancer.
- Nucleotide imbalances, particularly deoxyribonucleotide triphosphates (dNTPs), are linked to diseases including cancer.
- The biochemical behavior of Ras proteins with deoxyguanosine triphosphate (dGTP) is not well understood.
Purpose of the Study:
- To investigate the intrinsic GTPase activity of Ras oncogenic mutants with both GTP and dGTP.
- To explore the interaction of Ras with the SOS catalytic domain (SOScat) in the presence of different nucleotide forms.
- To assess the impact of covalent inhibitors on the GTPase and dGTPase activity of K-RasG12C.
Main Methods:
- Native mass spectrometry was employed to monitor the intrinsic GTPase activity of H-Ras and N-Ras mutants.
- Analysis of K-Ras expressed from HEK293 cells to determine dGNP abundance.
- Investigation of molecular assemblies between Ras proteins and SOScat using mass spectrometry.
Main Results:
- The rate of dGTP hydrolysis by H-Ras and N-Ras mutants differed significantly from GTP hydrolysis, up to seven-fold.
- K-Ras from HEK293 cells showed unexpectedly high dGNP abundance.
- Covalent inhibitors accelerated both GTPase and dGTPase activity of K-RasG12C (10.2- and 3.8-fold, respectively).
- Ras-SOScat complex formation varied depending on Ras mutants and the bound nucleotide form (GTP vs. dGTP).
Conclusions:
- Ras proteins exhibit distinct biochemical properties when bound to dGTP compared to GTP, influencing MAPK pathway regulation.
- The findings suggest potential for developing Pan-Ras inhibitors targeting both GTP and dGTP binding.
- Understanding nucleotide-dependent Ras activity provides new insights into Ras-driven cancers and therapeutic strategies.
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