TY - JOUR
T1 - Oxidation of tertiary amines by cytochrome P450-Kinetic isotope effect as a spin-state reactivity probe
AU - Li, Chunsen
AU - Wu, Wei
AU - Cho, Kyung Bin
AU - Shaik, Sason
AU - Li, C.
AU - Wu, W.
PY - 2009/8/24
Y1 - 2009/8/24
N2 - Two types of tertiary amine oxidation processes, namely, N-dealkylation and N-oxygenation, by compound I (Cpd I) of cytochrome P450 are studied theoretically using hybrid DFT calculations. All the calculations show that both N-dealkylation and Noxygenation of trimethylamine (TMA) proceed preferentially from the lowspin (LS) state of Cpd I. Indeed, the computed kinetic isotope effects (KIEs) for the rate-controlling hydrogen abstraction step of dealkylation show that only the KIELSfits the exper-imental datum, whereas the corresponding value for the high-spin (HS) process is much higher. These results second those published before for N1Ndimethylaniline (DMA), and as such, they further confirm the conclusion drawn then that KIEs can be a sensitive probe of spin state reactivity. The ferric-carbinolamine of TMA decomposes most likely in a non-enzymatic reaction since the Fe-O bond dissociation energy (BDE) is negative. The computational results reveal that in the reverse reaction of N-oxygenation, the N-oxide of aromatic amine can serve as a better oxygen donor than that of aliphatic amine to generate Cpd I. This capability of the N-oxo derivatives of aromatic amines to transfer oxygen to the heme, and thereby generate Cpd I, is in good accord with experimental data previously reported.
AB - Two types of tertiary amine oxidation processes, namely, N-dealkylation and N-oxygenation, by compound I (Cpd I) of cytochrome P450 are studied theoretically using hybrid DFT calculations. All the calculations show that both N-dealkylation and Noxygenation of trimethylamine (TMA) proceed preferentially from the lowspin (LS) state of Cpd I. Indeed, the computed kinetic isotope effects (KIEs) for the rate-controlling hydrogen abstraction step of dealkylation show that only the KIELSfits the exper-imental datum, whereas the corresponding value for the high-spin (HS) process is much higher. These results second those published before for N1Ndimethylaniline (DMA), and as such, they further confirm the conclusion drawn then that KIEs can be a sensitive probe of spin state reactivity. The ferric-carbinolamine of TMA decomposes most likely in a non-enzymatic reaction since the Fe-O bond dissociation energy (BDE) is negative. The computational results reveal that in the reverse reaction of N-oxygenation, the N-oxide of aromatic amine can serve as a better oxygen donor than that of aliphatic amine to generate Cpd I. This capability of the N-oxo derivatives of aromatic amines to transfer oxygen to the heme, and thereby generate Cpd I, is in good accord with experimental data previously reported.
KW - Amine oxidation cytochrome P450
KW - Density functional calculations
KW - Kinetic isotope effects
KW - Spin selectivity
UR - http://www.scopus.com/inward/record.url?scp=69249141050&partnerID=8YFLogxK
U2 - 10.1002/chem.200802215
DO - 10.1002/chem.200802215
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C2 - 19322770
AN - SCOPUS:69249141050
SN - 0947-6539
VL - 15
SP - 8492
EP - 8503
JO - Chemistry - A European Journal
JF - Chemistry - A European Journal
IS - 34
ER -