<p>Directing group-based strategies have proven highly effective for site-selective functionalization of π bonds in alkenes and carbonyls, as well as C–H and C–C bonds, but have yet to be demonstrated for unactivated aromatic π-systems. Meanwhile, catalytic hydrogenation of arenes to their corresponding saturated carbo- or heterocycles offers a straightforward approach to increase molecular three-dimensionality and <i>sp</i><sup>3</sup> carbon content in pharmaceutical compounds; however, it remains challenging to achieve site-selective dearomatization among electronically and sterically unbiased arenes. Here we report a Ru-catalysed directed arene saturation, which selectively reduces the aryl group adjacent to the directing moiety. Remarkably, a number of easily reducible functional groups are compatible with the mild reaction conditions. The preliminary mechanistic study reveals a homogeneous catalysis process and the potential involvement of an η<sup>6</sup>-arene-ruthenium intermediate. The synthetic utility of this method is demonstrated in the streamlined synthesis of <i>cis</i>-atovaquone, gram-scale reactions and late-stage saturation of complex bioactive compounds.</p><p></p>

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Site-selective Ru-catalysed saturation of unactivated arenes via directed 6π activation

  • Congjun Yu,
  • Linda Yiu,
  • Zining Zhang,
  • Guangbin Dong

摘要

Directing group-based strategies have proven highly effective for site-selective functionalization of π bonds in alkenes and carbonyls, as well as C–H and C–C bonds, but have yet to be demonstrated for unactivated aromatic π-systems. Meanwhile, catalytic hydrogenation of arenes to their corresponding saturated carbo- or heterocycles offers a straightforward approach to increase molecular three-dimensionality and sp3 carbon content in pharmaceutical compounds; however, it remains challenging to achieve site-selective dearomatization among electronically and sterically unbiased arenes. Here we report a Ru-catalysed directed arene saturation, which selectively reduces the aryl group adjacent to the directing moiety. Remarkably, a number of easily reducible functional groups are compatible with the mild reaction conditions. The preliminary mechanistic study reveals a homogeneous catalysis process and the potential involvement of an η6-arene-ruthenium intermediate. The synthetic utility of this method is demonstrated in the streamlined synthesis of cis-atovaquone, gram-scale reactions and late-stage saturation of complex bioactive compounds.