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Substrate binding is required for release of product from mammalian protein farnesyltransferase
W R Tschantz1, E S Furfine, P J Casey
1Department of Molecular Cancer Biology and Biochemistry, Duke University Medical Center, Durham, North Carolina 27710-3686, USA.
Abstract:
Protein farnesyltransferase (FTase) catalyzes the modification by a farnesyl lipid of Ras and several other key proteins involved in cellular regulation. Previous studies on this important enzyme have indicated that product dissociation is the rate-limiting step in catalysis. A detailed examination of this has now been performed, and the results provide surprising insights into the mechanism of the enzyme. Examination of the binding of a farnesylated peptide product to free enzyme revealed a binding affinity of approximately 1 microM. However, analysis of the product release step under single turnover conditions led to the surprising observation that the peptide product did not dissociate from the enzyme unless additional substrate was provided. Once additional substrate was provided, the enzyme released the farnesylated peptide product with rates comparable with that of overall catalysis by FTase. Additionally, stable FTase-farnesylated product complexes were formed using Ras proteins as substrates, and these complexes also require additional substrate for product release. These data have major implications in both our understanding of overall mechanism of this enzyme and in design of inhibitors against this therapeutic target.
Insights
Protein farnesyltransferase (FTase) product release is surprisingly substrate-dependent. Additional substrate is required for the release of farnesylated products, impacting enzyme mechanism and drug design.
Area of Science:
- Biochemistry
- Enzymology
- Molecular Biology
Background:
- Protein farnesyltransferase (FTase) modifies key regulatory proteins like Ras.
- Previous research suggested product dissociation is the rate-limiting step for FTase.
Purpose of the Study:
- To investigate the mechanism of product dissociation in FTase catalysis.
- To understand the role of substrate in product release from FTase.
Main Methods:
- Examined binding affinity of farnesylated peptide product to free FTase.
- Analyzed product release under single turnover conditions.
- Formed stable FTase-farnesylated product complexes using Ras proteins.
Main Results:
- Farnesylated peptide product binds FTase with ~1 microM affinity.
- Product dissociation requires additional substrate, not spontaneous release.
- Stable complexes with Ras proteins also necessitate substrate for product release.
Conclusions:
- FTase product release is unexpectedly dependent on substrate availability.
- These findings offer new insights into FTase mechanism.
- Implications for designing novel FTase inhibitors for therapeutic targets.