AbstractRecent data from studies of enzyme catalyzed hydrogen transfer reactions implicate a new theoretical context in which to understand C–H activation. This is much closer to the Marcus theory of electron transfer, in that environmental factors influence the probability of effective wave function overlap from donor to acceptor atoms. The larger size of hydrogen and the availability of three isotopes (H, D and T) introduce a dimension to the kinetic analysis that is not available for electron transfer. This concerns the role of gating between donor and acceptor atoms, in particular whether the system in question is able to tune distance between reactants to achieve maximal tunneling efficiency. Analysis of enzyme systems is providing inc...
We present an atomic-level description of the reaction chemistry of an enzyme-catalyzed reaction dom...
The role of enzyme motions in hydrogen tunneling during catalysis is currently a very contentious su...
Kinetics of the hydride transfer reactions from 10-methyl-9,10-dihydroacridan (MAH) and 9,10-dimethy...
AbstractRecent data from studies of enzyme catalyzed hydrogen transfer reactions implicate a new the...
AbstractThe investigation of C-H bond activation by enzymes over the past several decades has reveal...
AbstractNuclear quantum mechanical tunnelling is important in enzyme-catalysed H-transfer reactions....
Hydrogen atom transfer (HAT) is a salient feature of many enzymatic C-H cleavage mechanisms. In syst...
Kinetic Isotope effects (KIEs) have long served as a probe for the mechanisms of both enzymatic and ...
Hydrogen transfer is an important process that takes place in nearly all biochemical reactions and i...
We present a theory of enzymatic hydrogen transfer in which hydrogen tunneling is mediated by therma...
The physical mechanism of C–H bond activation by enzymes is the subject of intense study, and we hav...
Semi-classical transitional state theory and Bell model with a H-tunneling correction are the tradit...
Kinetic Isotope effects (KIEs) have long served as a probe for the mechanisms of both enzymatic and ...
Kinetic isotope effects (KIEs), originally a tool for the physical organic chemist and mechanistic e...
The instanton approach, as previously applied to proton tunneling in molecular systems, is adapted t...
We present an atomic-level description of the reaction chemistry of an enzyme-catalyzed reaction dom...
The role of enzyme motions in hydrogen tunneling during catalysis is currently a very contentious su...
Kinetics of the hydride transfer reactions from 10-methyl-9,10-dihydroacridan (MAH) and 9,10-dimethy...
AbstractRecent data from studies of enzyme catalyzed hydrogen transfer reactions implicate a new the...
AbstractThe investigation of C-H bond activation by enzymes over the past several decades has reveal...
AbstractNuclear quantum mechanical tunnelling is important in enzyme-catalysed H-transfer reactions....
Hydrogen atom transfer (HAT) is a salient feature of many enzymatic C-H cleavage mechanisms. In syst...
Kinetic Isotope effects (KIEs) have long served as a probe for the mechanisms of both enzymatic and ...
Hydrogen transfer is an important process that takes place in nearly all biochemical reactions and i...
We present a theory of enzymatic hydrogen transfer in which hydrogen tunneling is mediated by therma...
The physical mechanism of C–H bond activation by enzymes is the subject of intense study, and we hav...
Semi-classical transitional state theory and Bell model with a H-tunneling correction are the tradit...
Kinetic Isotope effects (KIEs) have long served as a probe for the mechanisms of both enzymatic and ...
Kinetic isotope effects (KIEs), originally a tool for the physical organic chemist and mechanistic e...
The instanton approach, as previously applied to proton tunneling in molecular systems, is adapted t...
We present an atomic-level description of the reaction chemistry of an enzyme-catalyzed reaction dom...
The role of enzyme motions in hydrogen tunneling during catalysis is currently a very contentious su...
Kinetics of the hydride transfer reactions from 10-methyl-9,10-dihydroacridan (MAH) and 9,10-dimethy...