Literature DB >> 11312741

The contribution of ligand flexibility to metal center geometry modulated thermal cyclization of conjugated pyridine and quinoline metalloenediynes of copper(I) and copper(II).

D S Rawat1, P J Benites, C D Incarvito, A L Rheingold, J M Zaleski.   

Abstract

We report the syntheses, reactivities, and structure evaluations of a series of Cu(I) and Cu(II) metalloenediynes of conjugated 1,6-bis(pyridine-3)hex-3-ene-1,5-diyne (PyED, 7) and 1,6-bis(quinoline-3)hex-3-ene-1,5-diyne (QnED, 8) enediyne ligands, as well as their benzoenediyne analogues. Differential scanning calorimetry demonstrates that the [Cu(PyED)(2)](NO(3))(2) (11) exhibits a Bergman cyclization temperature (156 degrees C) which is dramatically reduced from that of the corresponding [Cu(PyED)(2)](PF(6)) (19) analogue (326 degrees C), indicating that large differences in the reactivities of these metalloenediynes can be accessed by variations in metal oxidation state. The distorted, 4-coordinate dichloride compound Cu(PyED)(Cl)(2) (15) exhibits a cyclization temperature (265 degrees C) between those of 11 and 19, suggesting that variation in geometry of the copper center is responsible for the wide range of reactivities. Similar results are obtained for the benzoenediyne and quinoline analogues. The structures of the Cu(II) systems have also been evaluated by a combination of electronic absorption and EPR spectroscopies which reveal tetragonal, 6-coordinate structures for the bis(enediyne) complexes, and tetrahedrally distorted 4-coordinate Cu(enediyne)Cl(2) species. For the bis(quinoline) enediyne derivatives 12 and 14 the larger g-anisotropy (g( parallel) = 2.27-2.28; g( perpendicular) = 2.06-2.07) indicates strong oxygen coordination from counterion. Molecular mechanics/dynamics calculations reveal that the geometries of these metal centers force the alkyne termini to a wide range of distances (3.85-4.20 A), thereby accounting for the variability in Bergman cyclization temperatures. Overall, the results show that ligand rigidity plays a prominent role in the conformational response of the enediyne to metal center geometry, which results in enhanced variations in the Bergman cyclization temperatures between complexes of different geometries.

Entities:  

Year:  2001        PMID: 11312741     DOI: 10.1021/ic010014l

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


  5 in total

1.  Characterization of Thermally Activated Metalloenediyne Cytotoxicity in Human Melanoma Cells.

Authors:  Eric J Keller; Meghan Porter; Joy E Garrett; Meredith Varie; Haiyan Wang; Karen E Pollok; John J Turchi; Jeffrey M Zaleski; Joseph R Dynlacht
Journal:  Radiat Res       Date:  2018-05-15       Impact factor: 2.841

2.  The role of ligand covalency in the selective activation of metalloenediynes for Bergman cyclization.

Authors:  Meghan R Porter; Jeffrey M Zaleski
Journal:  Polyhedron       Date:  2015-11-05       Impact factor: 3.052

3.  Synthesis and Characterization of a Ditriflate-Bridged, Diiron(II) Complex with Syn-N-Donor Ligands: [Fe(2)(μ-OTf)(2)(PIC(2)DET)(2)](BARF)(2).

Authors:  Jeremy J Kodanko; Stephen J Lippard
Journal:  Inorganica Chim Acta       Date:  2008-03-03       Impact factor: 2.545

4.  A novel rearrangement of fluorescent human thymidylate synthase inhibitor analogues in ESI tandem mass spectrometry.

Authors:  Yi Chen; Céline Le Droumaguet; Kai Li; William E Cotham; Norman Lee; Mike Walla; Qian Wang
Journal:  J Am Soc Mass Spectrom       Date:  2009-12-03       Impact factor: 3.109

5.  Synthesis and in vitro antiproliferative activity of novel (4-chloro- and 4-acyloxy-2-butynyl)thioquinolines.

Authors:  Stanisław Boryczka; Wojciech Mól; Magdalena Milczarek; Joanna Wietrzyk; Ewa Bębenek
Journal:  Med Chem Res       Date:  2010-11-17       Impact factor: 1.965

  5 in total

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