Thank you very much for your interest in our products. All prices listed on our website are ex-works, Germany, and may attract customs duties when imported.
You may/will be contacted by the shipping company for additional documentation that may be required by the US Customs for clearance.
We offer you the convenience of buying through a local partner, Peptide Solutions LLC who can import the shipment as well as prepay the customs duties and brokerage on your behalf and provide the convenience of a domestic sale.
Siderophore Building Block: New Hydroxamate-Ornithine for Fmoc/tBu SPPS
Siderophore Building Block: New Hydroxamate-Ornithine for Fmoc/tBu SPPS
Siderophore Building Block: New Hydroxamate-Ornithine for Fmoc/tBu SPPS
Published on 03/12/2015
Nδ-hydroxy-Nδ-acetyl-ornithine, an important constituent of many siderophores, is now available for your convenience as Nα-Fmoc-Nδ-(acetyl)-Nδ-(benzoyloxy)-ornithine building block which can be used in standard Fmoc/tBu SPPS and permits facile on-resin Nδ-deprotection.
Ornithine is a pivotal amino acid in microbial cell metabolism. Among other things, bacteria utilize ornithine for the synthesis of peptidoglycan and lipids. Moreover, Orn is an important constituent of certain antibiotics, such as the highly bactericidal Daptomycin.
The hydroxamate-ornithine derivative Nδ-hydroxy-Nδ-acetyl-ornithine is a bidentate ligand that is found in many siderophores. Siderophores are small peptides and other biomolecules that form stable hexadentate octahedral complexes with Fe3+ and other metal ions. They are used by microorganisms during iron depletion in order to scavenge iron from the environment. Siderophores are taken up by specific microbial receptors and transport systems, a property that can be exploited to deliver antibiotics via Siderophore-Drug-Conjugates. Since it bypasses the bacterium’s defences, this method is aptly termed the “Trojan Horse” strategy.
Nα-Fmoc-Nδ-(acetyl)-Nδ-(benzoyloxy)-ornithine is now available for your convenience. It is suitable for SPPS using standard Fmoc/tBu chemistry. Moreover, this novel building block permits on-resin Nδ-deprotection by debenzoylation using 1 M LiOH in THF/MeOH. These properties allow for rapid and convenient incorporation of Nδ-hydroxy-Nδ-acetyl-ornithine for the synthesis of novel target peptides.
Chemistry and biology of siderophores; R. C. Hider and X. Kong; Natural Product Reports 2010; 27: 637-657. doi:10.1039/b906679a
Beyond iron: non-classical biological functions of bacterial siderophores; T. C. Johnstone and E. M. Nolan; Dalton Transactions 2015; 44: 6320-6339. doi:10.1039/c4dt03559c
Enterobactin-Mediated Delivery of β-Lactam Antibiotics Enhances Antibacterial Activity against Pathogenic Escherichia coli; T. Zheng and E. M. Nolan; Journal of the American Chemical Society 2014; 136: 9677-9691. doi:10.1021/ja503911p
Staphyloferrin A as siderophore-component in fluoroquinolone-based Trojan horse antibiotics; S. J. Milner, A. Seve, A. M. Snelling, G. H. Thomas, K. G. Kerr, A. Routledge and A.-K. Duhme-Klair; Organic & Biomolecular Chemistry 2013; 11: 3461-3468. doi:10.1039/c3ob40162f
Siderophore-Mediated Cargo Delivery to the Cytoplasm of Escherichia coli and Pseudomonas aeruginosa: Syntheses of Monofunctionalized Enterobactin Scaffolds and Evaluation of Enterobactin–Cargo Conjugate Uptake; T. Zheng, J. L. Bullock and E. M. Nolan; Journal of the American Chemical Society 2012; 134: 18388-18400. doi:10.1021/ja3077268
Chemical synthesis and biological evaluation of gallidermin-siderophore conjugates; S. Yoganathan, C. S. Sit and J. C. Vederas; Organic & Biomolecular Chemistry 2011; 9: 2133-2141. doi:10.1039/c0ob00846j
Exploiting bacterial iron acquisition: siderophore conjugates; C. Ji, R. E. Juarez-Hernandez and M. J. Miller; Future medicinal chemistry 2012; 4: 297-313. doi:10.4155/fmc.11.191
Design and synthesis of a siderophore conjugate as a potent PSMA inhibitor and potential diagnostic agent for prostate cancer; P. Ding, P. Helquist and M. J. Miller; Bioorganic & Medicinal Chemistry 2008; 16: 1648-1657. doi:http://dx.doi.org/10.1016/j.bmc.2007.11.030
Design and synthesis of a novel protected mixed ligand siderophore; P. Ding, C. E. Schous and M. J. Miller; Tetrahedron letters 2008; 49: 2306-2310. doi:10.1016/j.tetlet.2008.02.007
Siderophore-antibiotic conjugates used as trojan horses against Pseudomonas aeruginosa; H. Budzikiewicz; Current topics in medicinal chemistry 2001; 1: 73-82.
Siderophore-dependent iron uptake systems as gates for antibiotic Trojan horse strategies against Pseudomonas aeruginosa; G. L. Mislin and I. J. Schalk; Metallomics : integrated biometal science 2014; 6: 408-20. doi:10.1039/c3mt00359k
Siderophores as drug delivery agents: application of the "Trojan Horse" strategy; U. Mollmann, L. Heinisch, A. Bauernfeind, T. Kohler and D. Ankel-Fuchs; Biometals : an international journal on the role of metal ions in biology, biochemistry, and medicine 2009; 22: 615-24. doi:10.1007/s10534-009-9219-2
Studies and syntheses of siderophores, microbial iron chelators, and analogs as potential drug delivery agents; J. M. Roosenberg, 2nd, Y. M. Lin, Y. Lu and M. J. Miller; Current medicinal chemistry 2000; 7: 159-97.
Iron transport-mediated drug delivery using mixed-ligand siderophore-β-lactam conjugates; A. Ghosh, M. Ghosh, C. Niu, F. Malouin, U. Moellmann and M. J. Miller; Chemistry & Biology 1996; 3: 1011-1019. doi:http://dx.doi.org/10.1016/S1074-5521(96)90167-2