Nitric oxide (NO) has been shown to exhibit significant anti-platelet activity and its release from polymer matrices has been already utilized to increase the biocompatibility of various blood-contacting devices. Herein, details of a new synthetic approach for preparing NO-releasing diazeniumdiolated polyurethanes (PU) are described. The method's utility is demonstrated by the incorporation of methoxymethyl- or sugar-protected pre-formed diazeniumdiolate moieties directly into chain extender diols which are then incorporated into the polyurethane backbone. This approach provides the ability to control the number of diazeniumdiolate groups incorporated into the polymer backbone, and hence the surface flux of NO that can ultimately be liberated from polymeric films prepared from the new PU materials. The method provides a means of covalently attaching diazeniumdiolate groups to polyurethanes in a form that resists dissociation of NO during processing but can be activated for spontaneous NO release via hydrolysis of the carbohydrate or methoxymethyl moieties under basic and acidic conditions, respectively.
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http://dx.doi.org/10.1039/c000152j | DOI Listing |
J Phys Chem Lett
December 2024
Department of Chemistry and Chemistry Institute for Functional Materials, Pusan National University, Busan 46241, Korea.
Diazeniumdiolates spontaneously release nitric oxide (NO) in aqueous solutions. Therefore, protected diazeniumdiolates have been developed for the controlled administration of NO to specific targets. Diazeniumdiolates with photoprotecting groups are useful for spatiotemporal NO delivery.
View Article and Find Full Text PDFMethods Enzymol
August 2024
Department of Chemistry & Biochemistry, University of California, Santa Barbara, CA, United States. Electronic address:
The C-diazeniumdiolate (N-nitrosohydroxylamine) group in the amino acid graminine (Gra) is a newly discovered Fe(III) ligand in microbial siderophores. Graminine was first identified in the siderophore gramibactin, and since this discovery, other Gra-containing siderophores have been identified, including megapolibactins, plantaribactin, gladiobactin, trinickiabactin (gramibactin B), and tistrellabactins. The C-diazeniumdiolate is photoreactive in UV light which provides a convenient characterization tool for this type of siderophore.
View Article and Find Full Text PDFMol Plant Microbe Interact
November 2024
Department of Chemistry, The University of North Carolina at Chapel Hill, Chapel Hill, NC 27599, U.S.A.
infects a wide variety of crops. The () is conserved across many strains and is responsible for producing an extracellular chemical signal, leudiazen. Disruption of the gene in pv.
View Article and Find Full Text PDFJ Am Chem Soc
June 2024
Department of Chemistry and Chemical Biology, Harvard University, Cambridge, Massachusetts 02138, United States.
Reactive functional groups, such as -nitrosamines, impart unique bioactivities to the natural products in which they are found. Recent work has illuminated enzymatic -nitrosation reactions in microbial natural product biosynthesis, motivating interest in discovering additional metabolites constructed using such reactivity. Here, we use a genome mining approach to identify over 400 cryptic biosynthetic gene clusters (BGCs) encoding homologues of the -nitrosating biosynthetic enzyme SznF, including the BGC for chalkophomycin, a Cu-binding metabolite that contains a -type diazeniumdiolate and -hydroxypyrrole.
View Article and Find Full Text PDFMolecules
April 2024
Department of Immunology, School of Basic Medical Sciences, Anhui Medical University, Hefei 230032, China.
Chalkophomycin is a novel chalkophore with antibiotic activities isolated from sp. CB00271, while its potential in studying cellular copper homeostasis makes it an important probe and drug lead. The constellation of -hydroxylpyrrole, 2-oxazoline, diazeniumdiolate, and methoxypyrrolinone functional groups into one compact molecular architecture capable of coordinating cupric ions draws interest to unprecedented enzymology responsible for chalkophomycin biosynthesis.
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