Iwaoka Michio, Takemoto Shinya, Tomoda Shuji
Department of Life Sciences, Graduate School of Arts and Sciences, The University of Tokyo, Komaba, Meguro-ku, Tokyo 153-8902, Japan.
J Am Chem Soc. 2002 Sep 4;124(35):10613-20. doi: 10.1021/ja026472q.
Weak nonbonded interactions between a divalent sulfur (S) atom and a main-chain carbonyl oxygen (O) atom have recently been characterized in proteins. However, they have shown distinctly different directional propensities around the O atom from the S...O interactions in small organic compounds, although the linearity of the C-S...O or S-S...O atomic alignment was commonly observed. To elucidate the observed discrepancy, a comprehensive search for nonbonded S.O interactions in the Cambridge Structural Database (CSD) and MP2 calculations on the model complexes between dimethyl disulfide (CH(3)SSCH(3)) and various carbonyl compounds were performed. It was found that the O atom showed a strong intrinsic tendency to approach the S atom from the backside of the S-C or S-S bond (in the sigma(S) direction). On the other hand, the S atom had both possibilities of approach to the carbonyl O atom within the same plane (in the n(O) direction) and out of the plane (in the pi(O) direction). In the case of S...O(amide) interactions, the pi(O) direction was significantly preferred as observed in proteins. Thus, structural features of S...O interactions depend on the type of carbonyl groups involved. The results suggested that S.O interactions may control protein structures to some extent and that the unique directional properties of S...O interactions could be applied to molecular design.
最近在蛋白质中发现了二价硫(S)原子与主链羰基氧(O)原子之间存在弱非键相互作用。然而,尽管通常观察到C-S...O或S-S...O原子排列呈线性,但它们在O原子周围表现出与小分子有机化合物中S...O相互作用明显不同的方向倾向。为了阐明观察到的差异,我们在剑桥结构数据库(CSD)中全面搜索了非键S.O相互作用,并对二甲基二硫(CH(3)SSCH(3))与各种羰基化合物之间的模型配合物进行了MP2计算。结果发现,O原子表现出从S-C或S-S键的背面(沿σ(S)方向)接近S原子的强烈内在倾向。另一方面,S原子有在同一平面内(沿n(O)方向)和平面外(沿π(O)方向)接近羰基O原子的两种可能性。在S...O(酰胺)相互作用的情况下,如在蛋白质中观察到的那样,π(O)方向明显更受青睐。因此,S...O相互作用的结构特征取决于所涉及的羰基类型。结果表明,S.O相互作用可能在一定程度上控制蛋白质结构,并且S...O相互作用独特的方向特性可应用于分子设计。