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用量子力学方法预测环戊多核芳香烃的反应活性

Prediction of the reactivities of cyclopenta-polynuclear aromatic hydrocarbons by quantum mechanical methods.

作者信息

Rabinowitz J R, Little S B

机构信息

Carcinogenesis and Metabolism Branch, Environmental Protection Agency, Research Triangle Park, North Carolina 27711.

出版信息

Xenobiotica. 1991 Feb;21(2):263-75. doi: 10.3109/00498259109039468.

DOI:10.3109/00498259109039468
PMID:2058181
Abstract
  1. The direction of epoxide ring opening may be predicted using the techniques of theoretical chemistry by comparing the computed total energy of the two possible carbocations formed. 2. To predict the direction of epoxide ring opening and the potential binding of aceanthrylene 1,2-epoxide to biopolymers, quantum mechanical calculations were performed on the two potential hydroxy carbocations. 3. The 2-hydroxy carbocation (II) was favoured over the 1-hydroxy carbocation by 11.8 kcal/mol. Molecule II had more positive charge at the meso carbon group than at the nominally charged 1 position. Both the lowest unoccupied molecular orbital and the molecular electrostatic potential confirm this result, and indicate the possibility of unusual adducts to biopolymers. 4. Similar calculations on the equivalent epoxides of acenaphthylene and acephenanthrylene do not show the same results. 5. Modelling the addition products of II with small nucleophiles indicates that these unusual addition products do not form, and that the interaction is controlled by electronic effects and not electrostatic effects. 6. The calculations on acephenanthrylene demonstrate the importance of including the hydroxyl group when making predictions relative to epoxide ring opening. 7. Molecular descriptors are surrogates for the interaction of that molecule with an often unknown biological target. In cases where molecular descriptors are used without information about the target, small quantitative differences may not be appropriate discriminators.
摘要
  1. 环氧化合物开环的方向可以通过理论化学技术,比较所形成的两种可能碳正离子的计算总能量来预测。2. 为了预测环氧化合物开环的方向以及并四苯1,2 - 环氧化物与生物聚合物的潜在结合情况,对两种潜在的羟基碳正离子进行了量子力学计算。3. 2 - 羟基碳正离子(II)比1 - 羟基碳正离子更稳定,能量低11.8千卡/摩尔。分子II在中位碳基团上的正电荷比在名义上带电荷的1位上更多。最低未占分子轨道和分子静电势都证实了这一结果,并表明可能形成与生物聚合物不同寻常的加合物。4. 对萘嵌戊烷和醋菲烯的等效环氧化物进行的类似计算并未显示出相同的结果。5. 对II与小分子亲核试剂加成产物的建模表明,这些不同寻常的加成产物不会形成,并且相互作用是由电子效应而非静电效应控制的。6. 对醋菲烯的计算表明,在预测环氧化合物开环时考虑羟基的重要性。7. 分子描述符是该分子与通常未知的生物靶点相互作用的替代物。在使用分子描述符而没有关于靶点信息的情况下,微小的定量差异可能不是合适的判别标准。

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