Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.
Nat Chem. 2012 Nov;4(11):915-20. doi: 10.1038/nchem.1458. Epub 2012 Sep 23.
Non-stop carbocationic polycyclizations of isoprenoids have been called the most complex chemical reactions occurring in nature. We describe a strategy for the initiation of tail-to-head polycyclization that relies on the sequestration of the counteranion away from the carbocation, which allows full propagation of the cationic charge. If the anion is mobile, Coulombic forces hold this species in close proximity to the carbocation and cause preemptive termination through elimination. Anion sequestration is crucial for effecting the biomimetic synthesis of complex and unstable terpenes, including the highly strained funebrenes. This study illustrates the deleterious role of the counterion in tail-to-head carbocationic polycyclization reactions, which to the best of our knowledge has not been rigorously explored. These observations are also expected to find use in the design and control of cationic polycyclization along biosynthetic pathways that have previously been inaccessible in bulk solvent.
萜类化合物的不停歇碳正离子多环化反应一直被称为自然界中发生的最复杂的化学反应。我们描述了一种从头至尾引发多环化的策略,该策略依赖于将抗衡阴离子与碳正离子隔离,从而允许阳离子电荷完全扩展。如果阴离子是可移动的,库仑力将该物质保持在与碳正离子的近距离,并通过消除作用导致抢先终止。阴离子隔离对于实现复杂且不稳定萜类化合物的仿生合成至关重要,包括高度应变的呋喃类化合物。这项研究说明了抗衡离子在从头至尾碳正离子多环化反应中的有害作用,据我们所知,这一作用尚未得到严格探索。这些观察结果也有望用于设计和控制阳离子多环化反应,这些反应在以前的本体溶剂中是无法进行的生物合成途径。