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Carbon monoxide binding by de novo heme proteins derived from designed combinatorial libraries
D A Moffet1, M A Case, J C House
1Contribution from the Department of Chemistry, Princeton University, Princeton, New Jersey 08544-1009, USA.
Journal of the American Chemical Society
|July 18, 2001
Summary
Newly designed heme proteins exhibit carbon monoxide (CO) binding affinities similar to myoglobin. Their properties suggest a default CO binding range for alpha-helical proteins without evolutionary or explicit design biases.
Area of Science:
- Biochemistry
- Protein Engineering
- Biophysics
Background:
- De novo heme proteins were created using a binary code strategy for 4-helix bundles.
- These proteins were not explicitly designed for heme or ligand binding, offering an unbiased functional assessment.
- Approximately half of the binary code proteins were previously found to bind heme.
Purpose of the Study:
- To assess the carbon monoxide (CO) binding capabilities of de novo heme proteins.
- To characterize CO binding affinity, kinetics, and the local heme environment.
- To establish a baseline for CO binding in engineered alpha-helical proteins.
Main Methods:
- Studied eight de novo heme proteins from combinatorial libraries.
- Measured CO binding affinity (dissociation constants, K(d)).
- Analyzed CO association kinetics (k(on)) and resonance Raman spectra of CO complexes.
Main Results:
- All eight proteins showed CO binding affinities in the low nanomolar range, comparable to myoglobin.
- CO association kinetics indicated a partially buried heme environment.
- Resonance Raman studies revealed a local environment around bound CO lacking hydrogen-bonding groups.
Conclusions:
- De novo heme proteins display CO binding properties similar to natural heme proteins like myoglobin.
- The heme environment in these proteins is partially buried and lacks hydrogen-bonding interactions with CO.
- These findings define a "default" CO binding range for alpha-helical proteins in the absence of specific design or evolutionary selection.
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