Literature DB >> 11886785

Coupling of isoprenoid triflates with organoboron nucleophiles: synthesis and biological evaluation of geranylgeranyl diphosphate analogues.

YongQi Mu1, Lisa M Eubanks, C Dale Poulter, Richard A Gibbs.   

Abstract

The Suzuki coupling reaction has been used to introduce a methyl group derived from commercially available methylboronic acid into a vinyl triflate. This has led to a concise synthesis of all-trans-geranylgeraniol, with the key step being the palladium-catalyzed, silver-mediated methylation of triflate to give ethyl geranylgeranoate. This coupling protocol has also been used to produce the novel geranylgeranyl diphosphate (GGPP) analogue 3-phenyl-3-desmethylgeranylgeranyl diphosphate (3-PhGGPP, ). Our previously developed organocuprate coupling protocol has been used to introduce the cyclopropyl and tert-butyl moieties into the 3-position of vinyl triflate. The four GGPP analogues 3-vinyl-3-desmethylgeranylgeranyl diphosphate (3-vGGPP, ), 3-cyclopropyl-3-desmethylgeranylgeranyl diphosphate (3-cpGGPP, ), 3-tert-butyl-3-desmethyl-geranylgeranyl diphosphate (3-tbGGPP, ), and were then evaluated as potential inhibitors of recombinant yeast protein-geranylgeranyl transferase I (PGGTase I). The potential mechanism-based inhibitors 3-vGGPP and 3-cpGGPP did not exhibit time-dependent inactivation of PGGTase I. Instead, both analogues were alternative substrates, in accord with the interaction of the corresponding farnesyl analogues 3-vFPP and 3-cpFPP with PFTase. The tert-butyl and phenyl analogues were not substrates, but were instead competitive inhibitors of PGGTase I. Note that all four of the GGPP analogues were bound less tightly by the enzyme than the natural substrate, in contrast to the behavior of the 3-substituted FPP analogues.

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Year:  2002        PMID: 11886785     DOI: 10.1016/s0968-0896(01)00390-x

Source DB:  PubMed          Journal:  Bioorg Med Chem        ISSN: 0968-0896            Impact factor:   3.641


  7 in total

1.  The isoprenoid substrate specificity of isoprenylcysteine carboxylmethyltransferase: development of novel inhibitors.

Authors:  Jessica L Anderson; Brian S Henriksen; Richard A Gibbs; Christine A Hrycyna
Journal:  J Biol Chem       Date:  2005-06-09       Impact factor: 5.157

2.  Protein farnesyltransferase-catalyzed isoprenoid transfer to peptide depends on lipid size and shape, not hydrophobicity.

Authors:  Thangaiah Subramanian; Suxia Liu; Jerry M Troutman; Douglas A Andres; H Peter Spielmann
Journal:  Chembiochem       Date:  2008-11-24       Impact factor: 3.164

3.  Exploration of GGTase-I substrate requirements. Part 1: Synthesis and biochemical evaluation of novel aryl-modified geranylgeranyl diphosphate analogs.

Authors:  Kayla J Temple; Elia N Wright; Carol A Fierke; Richard A Gibbs
Journal:  Bioorg Med Chem Lett       Date:  2016-06-16       Impact factor: 2.823

4.  Tuning the production of variable length, fluorescent polyisoprenoids using surfactant-controlled enzymatic synthesis.

Authors:  Jerry M Troutman; Katelyn M Erickson; Phillip M Scott; Joseph M Hazel; Christina D Martinez; Samantha Dodbele
Journal:  Biochemistry       Date:  2015-04-29       Impact factor: 3.162

Review 5.  Potassium trifluoroborate salts as convenient, stable reagents for difficult alkyl transfers.

Authors:  Gary A Molander; Deidre L Sandrock
Journal:  Curr Opin Drug Discov Devel       Date:  2009-11

6.  Cross-coupling reaction with lithium methyltriolborate.

Authors:  Yasunori Yamamoto; Kazuya Ikizakura; Hajime Ito; Norio Miyaura
Journal:  Molecules       Date:  2012-12-28       Impact factor: 4.411

7.  Synthetic Routes to Methylerythritol Phosphate Pathway Intermediates and Downstream Isoprenoids.

Authors:  Sarah K Jarchow-Choy; Andrew T Koppisch; David T Fox
Journal:  Curr Org Chem       Date:  2014-04       Impact factor: 2.180

  7 in total

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