Modern organic synthesis aims to prepare the target molecule in a minimal number of steps. Hence, the efficiency, selectivity, and predictability of each of these steps need to be carefully optimized, even at a late stage of a synthetic route. This is particularly true in the case of aliphatic C-H functionalization, since differentiating one C-H bond among many others with similar properties in organic molecules often stands as an open challenge. Remote, inactivated C-H sites are especially difficult to target. Supramolecular catalysis represents one of the tools to overcome such problems. As occurs in enzymes, substrate binding to a supramolecular catalyst constrains their relative orientation, and the resulting preorganization can increase reactivity and unlock unusual selectivity in a rational and predictable manner, meeting late-stage functionalization requirements. In fact, supramolecular catalysis, which was initially oriented to the comprehension of the mechanisms of the involved reactions, is currently and rapidly evolving into a synthetically useful tool.One decade ago, in 2017, we described Fe- and Mn-based supramolecular catalysts equipped with crown ether recognition sites able to efficiently catalyze the oxidation of inactivated C-H bonds in protonated primary amines. Substrate preorganization induced by recognition enables elusive oxidation at remote C8 and C9 sites in linear alkyl chains. Since then, a number of follow-up investigations allowed us to rationally elicit unnatural reactivity and selectivity in different bioinspired oxidation reactions, including predictable, late-stage C-H oxidation of steroids. In addition, an in-depth analysis of such oxidation processes provides a deep comprehension of the action mechanism of these supramolecular catalysts.In this Account, we discuss the above investigations aiming to show (i) the rational approach to the design of a supramolecular oxidation catalyst, (ii) the experimental and theoretical tools that help understand and assess its mechanism of action, and (iii) its potential to address synthetic challenges. Eventually, a section that compares our approach to the one of other research groups illustrates the state of the art in supramolecular oxidation catalysis.
Rational Design of Supramolecular Fe and Mn Oxidation Catalysts / Olivo, G., Costas, M., Di Stefano, S.. - In: ACCOUNTS OF CHEMICAL RESEARCH. - ISSN 1520-4898. - 59:15(2026), pp. 2503-2515. [10.1021/acs.accounts.6c00368]
Rational Design of Supramolecular Fe and Mn Oxidation Catalysts
Olivo G.
;Di Stefano S.
2026
Abstract
Modern organic synthesis aims to prepare the target molecule in a minimal number of steps. Hence, the efficiency, selectivity, and predictability of each of these steps need to be carefully optimized, even at a late stage of a synthetic route. This is particularly true in the case of aliphatic C-H functionalization, since differentiating one C-H bond among many others with similar properties in organic molecules often stands as an open challenge. Remote, inactivated C-H sites are especially difficult to target. Supramolecular catalysis represents one of the tools to overcome such problems. As occurs in enzymes, substrate binding to a supramolecular catalyst constrains their relative orientation, and the resulting preorganization can increase reactivity and unlock unusual selectivity in a rational and predictable manner, meeting late-stage functionalization requirements. In fact, supramolecular catalysis, which was initially oriented to the comprehension of the mechanisms of the involved reactions, is currently and rapidly evolving into a synthetically useful tool.One decade ago, in 2017, we described Fe- and Mn-based supramolecular catalysts equipped with crown ether recognition sites able to efficiently catalyze the oxidation of inactivated C-H bonds in protonated primary amines. Substrate preorganization induced by recognition enables elusive oxidation at remote C8 and C9 sites in linear alkyl chains. Since then, a number of follow-up investigations allowed us to rationally elicit unnatural reactivity and selectivity in different bioinspired oxidation reactions, including predictable, late-stage C-H oxidation of steroids. In addition, an in-depth analysis of such oxidation processes provides a deep comprehension of the action mechanism of these supramolecular catalysts.In this Account, we discuss the above investigations aiming to show (i) the rational approach to the design of a supramolecular oxidation catalyst, (ii) the experimental and theoretical tools that help understand and assess its mechanism of action, and (iii) its potential to address synthetic challenges. Eventually, a section that compares our approach to the one of other research groups illustrates the state of the art in supramolecular oxidation catalysis.I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.


