Department of Chemistry, Indian Institute of Technology, Kharagpur 721 302, India.
J Am Chem Soc. 2009 Nov 4;131(43):15695-704. doi: 10.1021/ja9023644.
A competitive scenario between Myers-Saito (MS) and Garratt-Braverman (GB) cyclization has been created in a molecule. High-level computations indicate a preference for GB over MS cyclization. The activation energies for the rate-determining steps of the GB and MS cyclizations were found to be the same (24.4 kcal/mol) at the B3LYP/6-31G* level of theory; thus, from the kinetic point of view, both reactions are feasible. However, the main biradical intermediate GB2 of the GB reaction is 6.2 kcal/mol lower in energy than the biradical MS2, which is the main intermediate of MS reaction, so GB cyclization is thermodynamically favored over MS cyclization. To verify the prediction by computational techniques, bisenediynyl sulfones 1-4 and bisenediynyl sulfoxide 17 were synthesized. Under basic conditions, these molecules isomerized to a system possessing both the ene-yne-allene and the bisallenic sulfone. The isolation of only one product, identified as the corresponding naphthalene- or benzene-fused sulfone 8-11, indicated the occurrence of GB cyclization as the sole reaction pathway. No product corresponding to the MS cyclization pathway could be isolated. Though the theoretical prediction showed a preference for the GB pathway over the MS pathway, the exclusive preference for GB over MS cyclization is very striking. Further analysis showed that the intramolecular self-quenching nature of the GB pathway may play an important role in the complete preference for this reaction. Apart from the mechanistic studies, these sulfones showed DNA cleavage activity that had an inverse relation with the reactivity order. Our findings are important for the design of artificial DNA-cleaving agents.
在一个分子中创造了 Myers-Saito (MS) 和 Garratt-Braverman (GB) 环化之间的竞争情景。高水平的计算表明,GB 环化优先于 MS 环化。在 B3LYP/6-31G*理论水平上,发现 GB 和 MS 环化的速率决定步骤的活化能相同(24.4 kcal/mol);因此,从动力学的角度来看,这两种反应都是可行的。然而,GB 反应的主要双自由基中间体 GB2 的能量比 MS 反应的主要中间体 MS2 低 6.2 kcal/mol,因此 GB 环化在热力学上优先于 MS 环化。为了验证计算技术的预测,合成了双烯二炔基亚砜 1-4 和双烯二炔基亚砜 17。在碱性条件下,这些分子异构化为同时具有烯炔-丙二烯和双烯基砜的体系。只有一种产物被分离出来,鉴定为相应的萘或苯并砜 8-11,表明 GB 环化是唯一的反应途径。无法分离出对应于 MS 环化途径的产物。尽管理论预测表明 GB 途径优先于 MS 途径,但对 GB 环化的完全偏好非常引人注目。进一步的分析表明,GB 途径的分子内自猝灭性质可能在这种反应的完全偏好中发挥重要作用。除了机理研究外,这些砜类化合物还表现出与反应性顺序相反的 DNA 切割活性。我们的发现对于设计人工 DNA 切割剂非常重要。