Literature DB >> 22971051

Trifunctional metal ion-catalyzed solvolysis: Cu(II)-promoted methanolysis of N,N-bis(2-picolyl) benzamides involves unusual Lewis acid activation of substrate, delivery of coordinated nucleophile, powerful assistance of the leaving group departure.

Mark A R Raycroft1, Christopher I Maxwell, Robyn A A Oldham, Areen Saffouri Andrea, Alexei A Neverov, R Stan Brown.   

Abstract

The methanolyses of Cu(II) complexes of a series of N,N-bis(2-picolyl) benzamides (4a-g) bearing substituents X on the aromatic ring were studied under (s)(s)pH-controlled conditions at 25 °C. The active form of the complexes at neutral (s)(s)pH has a stoichiometry of 4:Cu(II):((-)OCH(3))(HOCH(3)) and decomposes unimolecularly with a rate constant k(x). A Hammett plot of log(k(x)) vs σ(x) values has a ρ(x) of 0.80 ± 0.05. Solvent deuterium kinetic isotope effects of 1.12 and 1.20 were determined for decomposition of the 4-nitro and 4-methoxy derivatives, 4b:Cu(II):((-)OCH(3))(HOCH(3)) and 4g:Cu(II):((-)OCH(3))(HOCH(3)), in the plateau region of the (s)(s)pH/log(k(x)) profiles in both CH(3)OH and CH(3)OD. Activation parameters for decomposition of these complexes are ΔH(++) = 19.1 and 21.3 kcal mol(-1) respectively and ΔS(++) = -5.1 and -2 cal K(-1) mol(-1). Density functional theory (DFT) calculations for the reactions of the Cu(II):((-)OCH(3))(HOCH(3)) complexes of 4a,b and g (4a, X = 3,5-dinitro) were conducted to probe the relative transition state energies and geometries of the different states. The experimental and computational data support a mechanism where the metal ion is coordinated to the N,N-bis(2-picolyl) amide unit and positioned so that it permits delivery of a coordinated Cu(II):((-)OCH(3)) nucleophile to the C═O in the rate-limiting transition state (TS) of the reaction. This proceeds to a tetrahedral intermediate INT, occupying a shallow minimum on the free energy surface with the Cu(II) coordinated to both the methoxide and the amidic N. Breakdown of INT is a virtually barrierless process, involving a Cu(II)-assisted departure of the bis(2-picolyl)amide anion. The analysis of the data points to a trifunctional role for the metal ion in the solvolysis mechanism where it activates intramolecular nucleophilic attack on the C═O group by coordination to an amidic N in the first step of the reaction and subsequently assists leaving group departure in the second step. The catalysis is very large; compared with the second order rate constant for methoxide attack on 4b, the computed reaction of CH3O(-) and 4b:Cu(II):(HOCH(3))(2) is accelerated by roughly 2.0 × 10(16) times.

Entities:  

Year:  2012        PMID: 22971051     DOI: 10.1021/ic301454y

Source DB:  PubMed          Journal:  Inorg Chem        ISSN: 0020-1669            Impact factor:   5.165


  3 in total

1.  Fe-catalyzed esterification of amides via C-N bond activation.

Authors:  Xiuling Chen; Siying Hu; Rongxing Chen; Jian Wang; Minghu Wu; Haibin Guo; Shaofa Sun
Journal:  RSC Adv       Date:  2018-01-25       Impact factor: 4.036

2.  Bis[(2-methyl-benz-yl)bis-(pyridin-2-ylmethyl-κN)amine-κN]manganese(II) bis-(perchlorate).

Authors:  Ray J Butcher; Yilma Gultneh; T B Yisgedu
Journal:  Acta Crystallogr Sect E Struct Rep Online       Date:  2014-02-15

3.  Evaluation of zinc (II) chelators for inhibiting p53-mediated apoptosis.

Authors:  Akinori Morita; Shinya Ariyasu; Soichiro Ohya; Ippei Takahashi; Bing Wang; Kaoru Tanaka; Takatoshi Uchida; Haruna Okazaki; Kengo Hanaya; Atsushi Enomoto; Mitsuru Nenoi; Masahiko Ikekita; Shin Aoki; Yoshio Hosoi
Journal:  Oncotarget       Date:  2013-12
  3 in total

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