Wade D
Faculty of Medicine, Department of Biochemistry, Kuwait University, Safat.
Chem Biol Interact. 1999 Feb 12;117(3):191-217. doi: 10.1016/s0009-2797(98)00097-0.
The topic of deuterium isotope effects is usually concerned with the effects on chemical reactions that are caused by the substitution of deuterium atoms for protium, or hydrogen, atoms in a molecule. These effects include changes in the rate of cleavage of covalent bonds to deuterium, or to an atom located adjacent to deuterium, in a reactant molecule. Deuterium isotope effects on other, noncovalent, interactions between molecules are known to occur, but they are generally considered to be insignificant, especially in biological experiments where deuterium substituted molecules are used as tracers. Noncovalent interactions between molecules include hydrogen bonding, and ionic and van der Waals interactions. This article reviews evidence for deuterium isotope effects on noncovalent interactions, with an emphasis on binding interactions between molecules of biological interest, but also including examples of nonbiological molecules in order to demonstrate the generality of these effects. The reality of this effect relies on the assumption that the only difference between the isotopomers considered is the presence of deuterium or hydrogen; there are no impurities present. The physical basis of the effect may be due to differences in the polarities and/or sizes of deuterated versus nondeuterated isomers, and the extent of a deuterium isotope effect on a noncovalent interaction depends on the site of deuteration within a biomolecule. The presence of this effect requires careful interpretation of results obtained in experiments with deuterium labeled compounds.
氘同位素效应的话题通常涉及因分子中氘原子取代氢原子(即质子)而对化学反应产生的影响。这些影响包括反应物分子中与氘相连或与氘相邻的原子的共价键断裂速率的变化。已知氘同位素效应会发生在分子间的其他非共价相互作用上,但通常认为这些影响微不足道,尤其是在使用氘取代分子作为示踪剂的生物学实验中。分子间的非共价相互作用包括氢键、离子键和范德华力。本文综述了氘同位素效应在非共价相互作用方面的证据,重点关注具有生物学意义的分子间的结合相互作用,但也包括非生物分子的例子,以证明这些效应的普遍性。这种效应的实际情况依赖于这样一个假设,即所考虑的同位素异构体之间的唯一区别是氘或氢的存在;不存在杂质。这种效应的物理基础可能是由于氘代异构体与非氘代异构体在极性和/或大小上的差异,并且氘同位素效应在非共价相互作用上的程度取决于生物分子内氘代的位置。这种效应的存在需要对用氘标记化合物进行的实验所获得的结果进行仔细解读。