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Published on: September 30, 2019
Protein farnesyl transferase target selectivity is dependent upon peptide stimulated product release
Jerry M Troutman1, Douglas A Andres, H Peter Spielmann
1Department of Molecular and Cellular Biochemistry, University of Kentucky, Lexington, Kentucky 40536-0084, USA.
Abstract:
Protein farnesyl transferase (FTase) catalyzes transfer of a 15 carbon farnesyl lipid to cysteine in the C-terminal Ca1a2X sequence of numerous proteins including Ras. Previous studies have shown that product release is rate limiting and is dependent on binding of either a new peptide or isoprenoid diphosphate substrate. While considerable progress has been made in understanding how FTase distinguishes between related target proteins, the relative importance of the two pathways for product release on substrate selectivity is unclear. A detailed analysis of substrate stimulated product release has now been performed and provides new insights into the mechanism of FTase target selectivity. To clarify how FTase selects between different Ca1a2X sequences, we have examined the competition of various peptide substrates for modification with the isoprenoids farnesyl diphosphate (FPP) and anilinogeranyl diphosphate (AGPP). We find that reactivity of some competing peptides is correlated with apparent Kmpeptide, while the reactivity of others is predicted by the selectivity factor apparent kcat/Kmpeptide. The peptide target selectivity also depends on the structure of the isoprenoid donor. Additionally, we observe two peptide substrate concentration dependent maxima and substrate inhibition in the steady-state reaction which require a minimum of three peptide binding states for the steady-state FTase reaction mechanism. We propose a model for the FTase reaction mechanism that, in addition to FPP stimulated product release, incorporates peptide binding to the FTase-FPP complex and the formation of an FTase-product-peptide complex followed by product release leading to an inhibitory FTase-peptide complex as a natural consequence of catalysis to explain these results.
Insights
Protein farnesyl transferase (FTase) enzyme selectivity for target proteins was investigated. Product release is key, influenced by peptide and isoprenoid substrate binding, revealing new insights into FTase
Area of Science:
- Biochemistry
- Enzymology
- Protein modification
Background:
- Protein farnesyl transferase (FTase) attaches farnesyl lipid to proteins like Ras.
- Product release is the rate-limiting step in FTase catalysis.
- Understanding FTase substrate selectivity is crucial for drug development.
Purpose of the Study:
- To elucidate the mechanism of FTase target selectivity.
- To investigate the role of product release pathways in substrate discrimination.
- To clarify how FTase distinguishes between different C-terminal Ca1a2X sequences.
Main Methods:
- Analysis of substrate-stimulated product release.
- Competition assays using various peptide substrates and isoprenoids (FPP, AGPP).
- Kinetic analysis including apparent Km and kcat/Km determination.
Main Results:
- Peptide reactivity correlates with Km or kcat/Km depending on the substrate.
- Isoprenoid donor structure influences peptide target selectivity.
- Observed substrate inhibition and biphasic kinetics suggest multiple peptide binding states.
Conclusions:
- FTase target selectivity is a complex process influenced by both peptide and isoprenoid substrates.
- A revised FTase reaction mechanism is proposed, incorporating multiple peptide binding states and product inhibition.
- These findings provide new insights into FTase function and potential therapeutic targeting.
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