Dual Photoredox/Nickel-Catalyzed Conversion of Aryl Halides to Aryl Aminooxetanes: Computational Evidence for a Substrate-Dependent Switch in Mechanism

被引:38
|
作者
Kolandouzan, Kavoos [1 ]
Khalaf, Ryan [1 ]
Grandner, Jessica M. [1 ]
Chen, Yongsheng [2 ]
Terrett, Jack A. [1 ]
Huestis, Malcolm P. [1 ]
机构
[1] Genentech Inc, Discovery Chem, 1 DNA Way, San Francisco, CA 94080 USA
[2] WuXi AppTec Co Ltd, 288 Fute Zhong Rd, Shanghai 200131, Peoples R China
关键词
bioisostere; cross-coupling; density functional theory; mechanistic analysis; nickel catalysis; oxetane; photoredox catalysis; tertiary radical; DECARBOXYLATIVE ARYLATION; MERGING PHOTOREDOX; CARBOXYLIC-ACIDS; DRUG DISCOVERY; ALKYL-HALIDES; OXETANES; BIOISOSTERES; LIGHT;
D O I
10.1021/acscatal.9b03596
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
A mild and direct strategy for the construction of aryl aminooxetanes has been accomplished through the synergistic combination of photoredox and nickel catalysis. This approach represents a rare example of harnessing challenging tertiary radicals in photoredox/nickel cross-coupling. Oxetanes are often employed in medicinal chemistry as carbonyl or gem-dimethyl bioisosteres, but their accessibility is hampered by the lack of practical synthetic methods. The strategy reported here utilizes a readily available oxetanyl amino acid building block in a cross-coupling manifold to rapidly access oxetane scaffolds with broad functional group tolerance. Computational studies reveal that a catalytic cycle beginning with Ni(0)-Ni(II) oxidative addition, rather than radical addition to Ni(0), is operative for reactions with aminooxetanyl radicals. Consequently, for radical-based photoredox/nickel-catalyzed cross-couplings, the preferred mechanistic pathway has a fundamental dependence on the identity of the radical.
引用
收藏
页码:405 / 411
页数:13
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