Enzymes with Molecular Tunnels

Ферменты с молекулярными туннелями
Frank M. Raushel, James B. Thoden, Hazel M. Holden
2003-04-26

ammonia translocationcatalytic efficiencyintermediate protectionmolecular tunnelsmultienzyme complexes
As a result of recent advances in molecular cloning, protein expression, and X-ray crystallography, it has now become feasible to examine complicated protein structures at high resolution. For those enzymes with multiple catalytic sites, a common theme is beginning to emerge; the existence of molecular tunnels that connect one active site with another. The apparent mechanistic advantages rendered by these molecular conduits include the protection of unstable intermediates and an improvement in catalytic efficiency by blocking the diffusion of intermediates into the bulk solvent. Since the first molecular tunnel within tryptophan synthase was discovered in 1988, tunnels within carbamoyl phosphate synthetase, glutamine phosphoribosylpyrophosphate amidotransferase, asparagine synthetase, glutamate synthase, imidazole glycerol phosphate synthase, glucosamine 6-phosphate synthase, and carbon monoxide dehydrogenase/acetyl-CoA synthase have been identified. The translocation of ammonia, derived from the hydrolysis of glutamine, is the most abundant functional requirement for a protein tunnel identified thus far. Here we describe and summarize our current understanding of molecular tunnels observed in various enzyme systems.
1
High-resolution structural methods have revealed molecular tunnels connecting separate catalytic sites in numerous multi-site enzymes.
2
Molecular tunnels can protect unstable reaction intermediates and improve catalytic efficiency by limiting their diffusion into bulk solvent.
3
Since the first tunnel was identified in tryptophan synthase in 1988, tunnels have been found in several enzymes, including carbamoyl phosphate synthetase and carbon monoxide dehydrogenase/acetyl-CoA synthase.
4
The most commonly identified functional role of protein tunnels is translocation of ammonia generated by glutamine hydrolysis between catalytic sites.
5
The review summarizes current understanding of molecular tunnels across diverse enzyme systems.

Molecular tunnels connecting multiple catalytic sites in multifunctional enzyme systems

Their mechanistic roles in protecting unstable intermediates and enhancing catalytic efficiency by directing intermediate translocation between active sites

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2003-04-26
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Frank M. Raushel
James B. Thoden
Hazel M. Holden
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