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      Structurally Divergent Lithium Catalyzed Friedel–Crafts Reactions on Oxetan‐3‐ols: Synthesis of 3,3‐Diaryloxetanes and 2,3‐Dihydrobenzofurans

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          Abstract

          The first examples of 3,3‐diaryloxetanes are prepared in a lithium‐catalyzed and substrate dependent divergent Friedel–Crafts reaction. para‐Selective Friedel–Crafts reactions of phenols using oxetan‐3‐ols afford 3,3‐diaryloxetanes by displacement of the hydroxy group. These constitute new isosteres for benzophenones and diarylmethanes. Conversely, ortho‐selective Friedel–Crafts reactions of phenols afford 3‐aryl‐3‐hydroxymethyl‐dihydrobenzofurans by tandem alkylation–ring‐opening reactions; the outcome of the reaction diverging to structurally distinct products dependent on the substrate regioselectivity. Further reactivity of the oxetane products is demonstrated, suitable for incorporation into drug discovery efforts.

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          Most cited references33

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          Synopsis of some recent tactical application of bioisosteres in drug design.

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            Nickel-catalysed Suzuki-Miyaura coupling of amides.

            The Suzuki-Miyaura coupling has become one of the most important and prevalent methods for the construction of C-C bonds. Although palladium catalysis has historically dominated the field, the use of nickel catalysis has become increasingly widespread because of its unique ability to cleave carbon-heteroatom bonds that are unreactive towards other transition metals. We report the first nickel-catalysed Suzuki-Miyaura coupling of amides, which proceeds by an uncommon cleavage of the amide C-N bond after N-tert-butoxycarbonyl activation. The methodology is mild, functional-group tolerant and can be strategically employed in sequential transition-metal-catalysed cross-coupling sequences to unite heterocyclic fragments. These studies demonstrate that amides, despite classically considered inert substrates, can be harnessed as synthons for use in reactions that form C-C bonds through cleavage of the C-N bond using non-precious metal catalysis.
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              Oxetanes in drug discovery: structural and synthetic insights.

              An oxetane can trigger profound changes in aqueous solubility, lipophilicity, metabolic stability, and conformational preference when replacing commonly employed functionalities such as gem-dimethyl or carbonyl groups. The magnitude of these changes depends on the structural context. Thus, by substitution of a gem-dimethyl group with an oxetane, aqueous solubility may increase by a factor of 4 to more than 4000 while reducing the rate of metabolic degradation in most cases. The incorporation of an oxetane into an aliphatic chain can cause conformational changes favoring synclinal rather than antiplanar arrangements of the chain. Additionally spirocyclic oxetanes (e.g., 2-oxa-6-aza-spiro[3.3]heptane) bear remarkable analogies to commonly used fragments in drug discovery, such as morpholine, and are even able to supplant the latter in its solubilizing ability. A rich chemistry of oxetan-3-one and derived Michael acceptors provide venues for the preparation of a broad variety of novel oxetanes not previously documented, thus providing the foundation for their broad use in chemistry and drug discovery.
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                Author and article information

                Contributors
                http://www3.imperial.ac.uk/people/j.bull
                j.bull@imperial.ac.uk
                Journal
                Chemistry
                Chemistry
                10.1002/(ISSN)1521-3765
                CHEM
                Chemistry (Weinheim an Der Bergstrasse, Germany)
                John Wiley and Sons Inc. (Hoboken )
                0947-6539
                1521-3765
                10 October 2016
                02 November 2016
                : 22
                : 45 ( doiID: 10.1002/chem.v22.45 )
                : 16271-16276
                Affiliations
                [ 1 ] Department of ChemistryImperial College London, South Kensington London SW7 2AZUK
                [ 2 ]Pfizer Global Research and Development 445 Eastern Point Rd. Groton CT 06340USA
                Author information
                http://orcid.org/0000-0003-3993-5818
                Article
                CHEM201604031
                10.1002/chem.201604031
                5095816
                27723135
                a92f0855-b9c8-4741-8371-b155cb3bf61a
                © 2016 The Authors. Published by Wiley-VCH Verlag GmbH & Co. KGaA.

                This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

                History
                : 24 August 2016
                Page count
                Figures: 8, Tables: 1, References: 81, Pages: 6, Words: 0
                Categories
                Full Paper
                Full Papers
                Oxygen Heterocycles | Hot Paper
                Custom metadata
                2.0
                chem201604031
                November 2, 2016
                Converter:WILEY_ML3GV2_TO_NLMPMC version:4.9.6 mode:remove_FC converted:04.11.2016

                Chemistry
                carbocations,homogeneous catalysis,lithium,oxetanes,oxygen heterocycles
                Chemistry
                carbocations, homogeneous catalysis, lithium, oxetanes, oxygen heterocycles

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