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Updated: May 5, 2026

Fully Processed Recombinant KRAS4b: Isolating and Characterizing the Farnesylated and Methylated Protein
Published on: January 16, 2020
Mechanism of farnesylated CAAX protein processing by the intramembrane protease Rce1
Ioannis Manolaridis1, Kiran Kulkarni1, Roger B Dodd1
1Institute of Cancer Research, 237 Fulham Road, London, SW3 6JB, UK.
Abstract:
CAAX proteins have essential roles in multiple signalling pathways, controlling processes such as proliferation, differentiation and carcinogenesis. The ∼120 mammalian CAAX proteins function at cellular membranes and include the Ras superfamily of small GTPases, nuclear lamins, the γ-subunit of heterotrimeric GTPases, and several protein kinases and phosphatases. The proper localization of CAAX proteins to cell membranes is orchestrated by a series of post-translational modifications of the carboxy-terminal CAAX motifs (where C is cysteine, A is an aliphatic amino acid and X is any amino acid). These reactions involve prenylation of the cysteine residue, cleavage at the AAX tripeptide and methylation of the carboxyl-prenylated cysteine residue. The major CAAX protease activity is mediated by Rce1 (Ras and a-factor converting enzyme 1), an intramembrane protease (IMP) of the endoplasmic reticulum. Information on the architecture and proteolytic mechanism of Rce1 has been lacking. Here we report the crystal structure of a Methanococcus maripaludis homologue of Rce1, whose endopeptidase specificity for farnesylated peptides mimics that of eukaryotic Rce1. Its structure, comprising eight transmembrane α-helices, and catalytic site are distinct from those of other IMPs. The catalytic residues are located ∼10 Å into the membrane and are exposed to the cytoplasm and membrane through a conical cavity that accommodates the prenylated CAAX substrate. We propose that the farnesyl lipid binds to a site at the opening of two transmembrane α-helices, which results in the scissile bond being positioned adjacent to a glutamate-activated nucleophilic water molecule. This study suggests that Rce1 is the founding member of a novel IMP family, the glutamate IMPs.
Insights
Researchers revealed the structure of Ras and a-factor converting enzyme 1 (Rce1), an intramembrane protease. This finding clarifies the mechanism of CAAX protein processing and identifies Rce1 as the first member of a novel glutamate intramembrane protease family.
Area of Science:
- Structural Biology
- Molecular Cell Biology
- Biochemistry
Background:
- CAAX proteins are crucial for cell signaling, proliferation, differentiation, and carcinogenesis, functioning at cellular membranes.
- Post-translational modifications, including prenylation, cleavage, and methylation of CAAX motifs, ensure proper protein localization.
- Ras and a-factor converting enzyme 1 (Rce1) is the primary intramembrane protease responsible for CAAX motif processing.
Purpose of the Study:
- To elucidate the structural architecture and proteolytic mechanism of Rce1, a key enzyme in CAAX protein processing.
- To investigate the structural basis for Rce1's substrate specificity, particularly for farnesylated peptides.
Main Methods:
- Determined the crystal structure of a Methanococcus maripaludis homologue of Rce1.
- Analyzed the enzyme's eight transmembrane α-helices and active site architecture.
- Modeled substrate accommodation and the proposed catalytic mechanism involving a glutamate residue.
Main Results:
- The structure reveals Rce1 as an eight transmembrane α-helix intramembrane protease with a unique architecture distinct from other IMPs.
- The catalytic site is located within the membrane, accessible via a conical cavity, accommodating the prenylated CAAX substrate.
- A proposed mechanism involves farnesyl lipid binding, positioning the substrate for cleavage by a glutamate-activated water molecule.
Conclusions:
- The structural and mechanistic insights provide a foundation for understanding Rce1 function in CAAX protein maturation.
- Rce1 represents the founding member of a novel family of intramembrane proteases, termed glutamate IMPs.
- This discovery opens new avenues for studying CAAX protein regulation and related cellular processes.
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