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Quantitative determination of cephalexin in cephradine by NMR spectroscopy.

An NMR method to determine quantitatively the presence of cephalexin in cephradine was developed. The method is applicable to the chemical itself as well as to capsules and oral suspension formulations. The determination is based on the NMR signal arising from the five aromatic protons of the cephalexin molecule. Integration of this signal relative to a signal from cephradine provides the data necessary to determine the percentage of cephalexin present. The precision at the 2% cephalexin levels is +/- 0.18%. The time required to carry out a single analysis is about 10 min, and five analyses can be done in about 0.5 hr.

Capsules

Application of 13C-NMR spectroscopy to in vitro analysis of enzyme kinetics.

The conversion of D,L-alpha-13C-histidine to similarly labeled alpha-13C histamine by bacterial and mammalian histidine decarboxylase was studied by 13C-NMR spectroscopy and GLC-mass spectrometry. The results obtained with the partially purified bacterial enzyme were in essentially perfect agreement with results obtained simultaneously with a standard radioisotopic method using carboxyl-labeled-14C-L-histidine. For a crude tissue preparation of the mammalian enzyme, the radioisotopic method indicated an activity three times that based on 13C-NMR measurement of alpha-13C-histamine. The difference in results was accountable in terms of additional 13C-NMR signals attributable to products other than histamine due in part to enzymatic degradation of the latter.

Animals

The use of 13C-nmr spectroscopy for the detection and identification of metabolites of carbon-13 labelled amitriptyline.

The antidepressant drug amitriptyline and two of its metabolites, nortriptyline and desmethylnortriptyline, each containing two 13C atoms, have been used to determine the sensitivity and selectivity of 13C-nmr spectroscopy for the detection of unchanged amitriptyline and N-desmethyl metabolites in the urine of animals dosed orally with the labelled drug. The resonance signals from the 13C atoms detected in the 13C-nmr spectrum of entire extract from a control 12 h rat urine sample to which 1 mg of each labelled compound had been added were easily detected, using an instrument accumulation time of 1 h. The 13C-nmr spectrum of an extract of hydrolysed urine from a dog that had received an oral dose of [13C2]amitriptyline (30mg) exhibited signals that could be assigned to metabolites resulting from N-dealkylation and N-oxidation, as well as those bearing the intact amitriptyline side-chain. These assignments were confirmed by analysis of the same extract by g.c.--ms and h.p.l.c.

Amitriptyline

Assignment by 13-C-NMR spectroscopy of configuration at C-5 in 17 alpha-ethylestran-17 beta-ol, an impurity in the anabolic steroid ethylestrenol.

The stereochemistry at C-5 in 17 alpha-ethylestran-17 beta-ol, found as an impurity in ethylesterenol, was assigned by 13C-NMR spectroscopy. The hydrogen atom attached to C-5 is in the alpha-configuration. Resonance assignments were confirmed by partial deuteration, off-resonance 13C-(1H)-decoupling, and comparison with model compounds.

Carbon Isotopes

C-NMR spectroscopy of tropane alkaloids.

The natural abundance 13C-NMR spectra of tropine, atropine, scopolamine, cocaine, atropine methonitrate, and dl-tropic acid were determined at 22.63 MHz. With the aid of proton decoupling techiniques and by comparison with analogous simpler compounds, it was possible to make self-consistent and unambiquous assignments of all carbon resonances for these alkaloids. Some important chemical shift trends were observed and should be useful in the identification of similar systems.

Chemical Phenomena

5-Azacytidine hydrolysis kinetics measured by high-pressure liquid chromatography and 13C-NMR spectroscopy.

Hydrolysis of 5-azacytidine, an experimental anticancer drug, in aqueous buffers was measured using a high-pressure liquid chromatographic (HPLC) procedure and a 13C-NMR method. The former utilized a 17.5-micron Aminex A-6 strong cation-exchanger column eluted with 0.4 M, pH 4.6 ammonium formate buffer at a flow rate of 0.4 ml/min. The hydrolysis sequence as well as the existence of a labile intermediate, N-formylguanylribosylurea, was unequivocally established using 6-13C-5-azacytidine and NMR spectral techniques. A reversible ring opening step to the N-formylguanylribosylurea with an equilibrium constant of 0.58 +/- 0.03 between pH 5.6 and 8.5, followed by an irreversible formation of guanylribosylurea, was found by HPLC. The data confirm previous assumptions on the hydrolytic kinetics. The pH dependency of hydrolysis was examined, and the hydrolysis profile gave a normal V shape with the most stable pH at 7.0. Rather stable intravenous dosage forms can be formulated.

Azacitidine

Conformation of DNA in chromatin core particles containing poly(dAdT)-poly(dAdT) studied by 31 P NMR spectroscopy.

We have prepared semi-synthetic chromatin core particles from a complex of chicken erythrocyte inner histones (H2A, H2B, H3 and H4) with double-stranded poly(dAdT).poly(dAdT) and studied the conformation of the phosphodiester backbone using 31P NMR at 109.3 MHz. At 20 degrees C, the core particle spectrum is fit well by a single Lorenzian distribution with a line width of 110 Hz. This signal is significantly broader than that for the 145 base pair poly(dAdT).poly(dAdT) alone; the latter consists of two resonances, approximately equal in intensity, with average line width 41 Hz. Major changes in the spectrum ensue on heating the core particle preparation. In conjunction with other results (1) these data suggest four states for the core particle at increasing temperatures. Additionally, analysis of the spectrum of the unmelted core particle and its differences from protein-free DNA of the same length suggests that the conformation of the phosphodiester backbone and/or its interactions with histones along the length of the core particle DNA segment may not be uniform.

Animals

Kinetics of enzyme-coenzyme interactions by NMR spectroscopy.

The kinetics for the binding of coenzymes to H4 and M4 lactate dehydrogenase from chicken were investigated by nuclear magnetic resonance spectroscopy. With detailed computer analysis, some kinetic parameters were extracted from the chemical shifts and the linewidth of the observed coenzyme resonances at various enzyme/coenzyme ratios and temperatures. The results of the analysis indicated that the dissociation rates of coenzymes from the enzyme/coenzyme complexes are slower with the H4 isozyme than those involving the M4 isozyme. The lifetimes for the NAD+-enzyme complexes are on the order of 1 msec while those for the NADH-enzyme complexes are on the order of 10 ms (at room temperature). Much shorter transverse relaxation times of the coenzyme resonances were observed in NADH-enzyme complexes than those in the NAD+-enzyme complexes. The calculated kinetic constants are in good agreement with the previous studies by stopped-flow and temperature jump methods. A generalized NMR kinetic treatment for the binding of small molecules to a macromolecule is presented.

Animals