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Updated: Mar 19, 2026

Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
Engineered subtilisin protease degrades active KRAS in cancer cells, leading to differential cell targeting
M E Goldstein1, B Chu2, K J Carillo2
1University of Maryland Institute for Bioscience and Biotechnology Research, Rockville, Maryland 20850, USA.
Abstract:
Controlling aberrant RAS signaling has been the subject of intensive efforts aimed at developing specific RAS inhibitors, small molecules that promote RAS degradation, and monobodies that inhibit RAS activity. Direct proteolytic degradation of RAS by site-specific proteases has received considerably less attention. A naturally-occurring protease from Vibrio vulnificus toxin cleaves all RAS isoforms at switch I and attenuates RAS signaling in cell models and patient-derived xenografts, thus demonstrating the potential of this approach. We previously designed a RAS-specific protease, called RASProtease (or RASp), that site-specifically cleaves RAS at switch II. Attacking switch II leverages an order to disorder transition that this region undertakes upon conversion to the active form that predominates in cancer. Switch II participates in an allosteric network that controls KRAS oncogenicity, making it a promising target for proteolytic cleavage that modulates RAS signaling. Preferential targeting of active RAS could be particularly useful for studying RAS signaling networks as well as having potential therapeutic value. Here we examined the effects of RASp cleavage on downstream signaling and cell viability in the MIA PaCa-2 cancer cell model, which harbors homozygous KRAS G12C and is KRAS-dependent for growth and survival. We found that cleavage of KRAS G12C coincided with a decrease in MEK-ERK signaling and resulted in extensive MIA PaCa-2 cell death 24 hours after induction of RASp expression. This level of cell death far exceeded that of control HEK 293T cells under the same conditions, underscoring the vulnerability of this cancer cell model to KRAS G12C elimination.
Insights
Directly degrading RAS proteins, specifically KRAS G12C, using a designed protease (RASp) effectively reduced cancer cell signaling and induced significant cell death in preclinical models.
Area of Science:
- Molecular Biology
- Oncology
- Protease Engineering
Background:
- Aberrant RAS signaling drives cancer, with current therapies focusing on inhibitors or degradation.
- Direct proteolytic cleavage of RAS proteins remains an under-explored therapeutic strategy.
- A previously designed RAS-specific protease (RASp) targets switch II of RAS proteins.
Purpose of the Study:
- To investigate the impact of RASp cleavage on downstream signaling pathways.
- To evaluate the effect of RASp on the viability of KRAS-dependent cancer cells.
- To assess the therapeutic potential of targeting active RAS through proteolytic cleavage.
Main Methods:
- Utilized the MIA PaCa-2 cancer cell line, characterized by KRAS G12C mutation.
- Induced expression of RASp to cleave KRAS G12C.
- Monitored MEK-ERK signaling pathway activity and cell viability post-RASp induction.
Main Results:
- RASp-mediated cleavage of KRAS G12C was confirmed.
- Significant reduction in MEK-ERK signaling was observed following RASp expression.
- Extensive MIA PaCa-2 cell death occurred within 24 hours, exceeding control cell responses.
Conclusions:
- Proteolytic cleavage of KRAS G12C by RASp effectively suppresses downstream signaling.
- Targeting KRAS G12C with RASp demonstrates potent anti-cancer activity in a relevant cell model.
- RASp-mediated degradation represents a promising approach for targeting RAS-driven cancers.
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