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Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
Precise characterization of KRAS4b proteoforms in human colorectal cells and tumors reveals mutation/modification
Ioanna Ntai1,2, Luca Fornelli1,2, Caroline J DeHart1,2
1Department of Chemistry, Proteomics Center of Excellence, Northwestern University, Evanston, IL 60208.
Abstract:
Mutations of the KRAS gene are found in human cancers with high frequency and result in the constitutive activation of its protein products. This leads to aberrant regulation of downstream pathways, promoting cell survival, proliferation, and tumorigenesis that drive cancer progression and negatively affect treatment outcomes. Here, we describe a workflow that can detect and quantify mutation-specific consequences of KRAS biochemistry, namely linked changes in posttranslational modifications (PTMs). We combined immunoaffinity enrichment with detection by top-down mass spectrometry to discover and quantify proteoforms with or without the Gly13Asp mutation (G13D) specifically in the KRAS4b isoform. The workflow was applied first to isogenic KRAS colorectal cancer (CRC) cell lines and then to patient CRC tumors with matching KRAS genotypes. In two cellular models, a direct link between the knockout of the mutant G13D allele and the complete nitrosylation of cysteine 118 of the remaining WT KRAS4b was observed. Analysis of tumor samples quantified the percentage of mutant KRAS4b actually present in cancer tissue and identified major differences in the levels of C-terminal carboxymethylation, a modification critical for membrane association. These data from CRC cells and human tumors suggest mechanisms of posttranslational regulation that are highly context-dependent and which lead to preferential production of specific KRAS4b proteoforms.
Insights
KRAS mutations drive cancer by altering protein function. This study introduces a new method to analyze KRAS posttranslational modifications (PTMs), revealing context-dependent regulation and specific proteoform production in colorectal cancer.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- KRAS gene mutations are frequent in human cancers, leading to constitutive protein activation.
- This aberrant signaling promotes cell survival, proliferation, and tumorigenesis, negatively impacting cancer treatment outcomes.
Purpose of the Study:
- To develop and validate a workflow for detecting and quantifying mutation-specific posttranslational modifications (PTMs) of KRAS.
- To investigate the biochemical consequences of KRAS mutations, specifically the Gly13Asp (G13D) mutation, on KRAS proteoforms.
Main Methods:
- Combined immunoaffinity enrichment with top-down mass spectrometry for proteoform discovery and quantification.
- Applied the workflow to isogenic KRAS colorectal cancer (CRC) cell lines and patient CRC tumors.
Main Results:
- Identified a direct link between G13D allele knockout and nitrosylation of cysteine 118 in wild-type KRAS4b in cellular models.
- Quantified mutant KRAS4b percentage in tumors and found significant differences in C-terminal carboxymethylation levels.
Conclusions:
- The developed workflow enables the analysis of mutation-specific KRAS PTMs.
- Posttranslational regulation of KRAS is context-dependent, influencing the preferential production of specific KRAS4b proteoforms in colorectal cancer.
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