Isotope Substitution of Promiscuous Alcohol Dehydrogenase Reveals the Origin of Substrate Preference in the Transition State

Замещение изотопов в промискуитетной алкогольдегидрогеназе выявляет происхождение предпочтения субстрата в переходном состоянии
Louis Y. P. Luk, J. Javier Ruiz‐Pernía, Iñaki Tuñón, Rudolf K. Allemann, Vicent Moliner, Enas M. Behiry
2018-01-17

BsADHalcohol dehydrogenase from Geobacillus stearothermophilusdynamic recrossingenzyme isotope effectenzyme isotope labellingprotein dynamic couplingprotein frictionsubstrate preferencetransition state frequency motion analysis
The origin of substrate preference in promiscuous enzymes was investigated by enzyme isotope labelling of the alcohol dehydrogenase from Geobacillus stearothermophilus (BsADH). At physiological temperature, protein dynamic coupling to the reaction coordinate was insignificant. However, the extent of dynamic coupling was highly substrate-dependent at lower temperatures. For benzyl alcohol, an enzyme isotope effect larger than unity was observed, whereas the enzyme isotope effect was close to unity for isopropanol. Frequency motion analysis on the transition states revealed that residues surrounding the active site undergo substantial displacement during catalysis for sterically bulky alcohols. BsADH prefers smaller substrates, which cause less protein friction along the reaction coordinate and reduced frequencies of dynamic recrossing. This hypothesis allows a prediction of the trend of enzyme isotope effects for a wide variety of substrates.
1
An enzyme isotope effect >1 was observed for benzyl alcohol, while the effect was close to 1 for isopropanol.
2
BsADH prefers smaller substrates because they cause less protein friction and reduced dynamic recrossing along the reaction coordinate, allowing prediction of enzyme isotope effect trends across substrates.
3
Dynamic coupling between protein motions and catalysis is highly substrate-dependent at lower temperatures.
4
Enzyme isotope labelling of BsADH shows protein dynamic coupling to the reaction coordinate is insignificant at physiological temperature.
5
Transition-state frequency motion analysis indicates active-site surrounding residues undergo substantial displacement during catalysis for sterically bulky alcohols.

Promiscuous alcohol dehydrogenase from Geobacillus stearothermophilus (BsADH)

Origin of substrate preference in the transition state manifested via enzyme isotope effects and protein dynamic coupling (frequency motion, protein friction, dynamic recrossing) for different alcohol substrates (e.g., benzyl alcohol vs isopropanol)

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2018-01-17
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Louis Y. P. Luk
J. Javier Ruiz‐Pernía
Iñaki Tuñón
Rudolf K. Allemann
Vicent Moliner
Enas M. Behiry
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