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Dual Mechanisms of HNO Generation by a Nitroxyl Prodrug of the Diazeniumdiolate (NONOate) Class

  1. Author:
    Andrei, D.
    Salmon, D. J.
    Donzelli, S.
    Wahab, A.
    Klose, J. R.
    Citro, M. L.
    Saavedra, J. E.
    Wink, D. A.
    Miranda, K. M.
    Keefer, L. K.
  2. Author Address

    [Salmon, Debra J.; Miranda, Katrina M.] Univ Arizona, Dept Chem & Biochem, Tucson, AZ 85721 USA. [Andrei, Daniela; Keefer, Larry K.] NCI, Chem Sect, Comparat Carcinogenesis Lab, Frederick, MD 21702 USA. [Donzelli, Sonia; Wahab, Azadeh] Univ Med Ctr Hamburg Eppendorf, Dept Expt & Clin Pharmacol & Toxicol, Hamburg, Germany. [Donzelli, Sonia] Univ Med Ctr Hamburg Eppendorf, Dept Neurol, Hamburg, Germany. [Donzelli, Sonia] Univ Med Ctr Hamburg Eppendorf, Cardiovasc Res Ctr, Hamburg, Germany. [Klose, John R.] SAIC Frederick, Lab Prote & Analyt Technol, Frederick, MD 21702 USA. [Citro, Michael L.; Saavedra, Joseph E.] SAIC Frederick, Basic Res Program, Frederick, MD 21702 USA. [Wink, David A.] NCI, Radiat Biol Branch, Bethesda, MD 20892 USA.;Miranda, KM, Univ Arizona, Dept Chem & Biochem, Tucson, AZ 85721 USA.;kmiranda@email.arizona.edu keeferl@mail.nih.gov
    1. Year: 2010
    2. Date: Nov
  1. Journal: Journal of the American Chemical Society
    1. 132
    2. 46
    3. Pages: 16526-16532
  2. Type of Article: Article
  3. ISSN: 0002-7863
  1. Abstract:

    Here we describe a novel caged form of the highly reactive bioeffector molecule, nitroxyl (HNO). Reacting the labile nitric oxide (NO)- and HNO-generating salt of structure iPrHN-N(O)=NO-Na+ (1, IPA/NO) with BrCH2OAc produced a stable derivative of structure iPrHN-N(O)=NO-CH2OAc (2, AcOM-IPA/NO), which hydrolyzed an order of magnitude more slowly than 1 at pH 7.4 and 37 degrees C. Hydrolysis of 2 to generate HNO proceeded by at least two mechanisms. In the presence of esterase, straightforward dissociation to acetate, formaldehyde, and 1 was the dominant path. In the absence of enzyme, free 1 was not observed as an intermediate and the ratio of NO to HNO among the products approached zero. To account for this surprising result, we propose a mechanism in which base-induced removal of the N-H proton of 2 leads to acetyl group migration from oxygen to the neighboring nitrogen, followed by cleavage of the resulting rearrangement product to isopropanediazoate ion and the known HNO precursor, CH3-C(O)-NO. The trappable yield of HNO from 2 was significantly enhanced over 1 at physiological pH, in part because the slower rate of hydrolysis for 2 generated a correspondingly lower steady-state concentration of HNO, thus, minimizing self-consumption and enhancing trapping by biological targets such as metmyoglobin and glutathione. Consistent with the chemical trapping efficiency data, micromolar concentrations of prodrug 2 displayed significantly more potent sarcomere shortening effects relative to 1 on ventricular myocytes isolated from wild-type mouse hearts, suggesting that 2 may be a promising lead compound for the development of heart failure therapies.

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External Sources

  1. DOI: 10.1021/jp106552p
  2. WOS: 000284792000044

Library Notes

  1. Fiscal Year: FY2010-2011
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