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Structural changes in cytochrome P-450cam effected by the binding of the enantiomers (1R)-camphor and (1S)-camphor.

A comparative study of the enantiomeric substrate [(1R)-camphor- and (1S)-camphor)-bound cytochrome P-450cam concerns the spin-state equilibrium, substrate dissociation, the thermal unfolding of the protein structure, and the subconformer equilibria observed in the infrared spectra of the carbon monoxide (CO) complex of cytochrome P-450cam. The behavior of the different conformational equilibria in dependence on temperature, pressure, pH-value, cosolvent, and cation binding led us to suggest that (1S)-camphor is more loosely and less optimally bound in the heme pocket, which facilitates the access of solvent molecules into the heme-iron environment. The spin reaction volume difference measured using the high pressure technique is smaller by 16 +/- 9 cm3/mol for (1S)-camphor-bound P-450cam compared to the (1R)-camphor-bound P-450cam, which might indicate a higher water content in the protein and in the heme environment in the (1S)-camphor complex. The half-transition temperature of the thermal unfolding of 53.8 degrees C for the (1S)-camphor-bound oxidized cytochrome P-450cam is one degree lower than the value for the (1R)-camphor-bound protein (54.8 degrees C). In the reduced, CO-bound form of cytochrome P-450cam at 290 K the (1S)-camphor complex reveals another CO stretch vibration population distribution with slightly higher frequencies [1940.2 cm-1 (major band) and 1946.3 cm-1 (minor band)] compared to the (1R)-camphor complex [1939.7 cm-1 (major band) and 1930 cm-1 (minor band)]. A loosening of the contact between the iron-bound CO ligand and amino acids of the I-helix, probably induced by compensating effects of the increased water content, is suggested. Assuming the carbon monoxide complex as a model for the dioxygen complex, the more loosened binding of (1S)-camphor, therefore the increased water accessibility, and the weaker contact of the iron ligand to the I-helix might explain the higher amount of uncoupling of the cytochrome P-450 reaction cycle compared to that when (1R)-camphor is used as substrate.

Binding Sites↗

[d-Camphor reference standard (Control 911) and dl-Camphor Reference Standard (Control 911) of the National Institute of Hygienic Sciences].

The raw materials of d-camphor and dl-camphor were examined for preparation of the "d-Camphor Reference Standard" and "dl-Camphor Reference Standard". Analytical data obtained were as follows: ultraviolet spectrum, lambda max = 290nm; infrared spectrum, 2958, 1742, 1045cm-1; optical rotation, [alpha]D20 = +42.7 degrees (d-camphor), [alpha]D20 = -0.3 degrees (dl-camphor); melting point, 180 degrees C (d-camphor), 179 degrees C (dl-camphor); gas-chromatography (GC), one impurity was detected in d-camphor and three impurities in dl-camphor; assay, 99.5% (d-camphor), 99.5% (dl-camphor) by GC. Based on the above results, these raw materials were authorized as the Japanese Pharmacopoeia Standard (Control 911).

Camphor↗

Time-resolved Fourier-transform infrared studies of the cytochrome P-450cam carbonmonoxide complex bound with (1R)-camphor and (1S)-camphor substrate.

The CO-binding reaction of cytochrome P-450cam bound with (1R)-camphor and (1S)-camphor are compared in the temperature region of 210-260 K using time-resolved Fourier-transform infrared spectroscopy with the CO stretch vibration as spectroscopic probe. For (1S)-camphor as substrate the association of CO is slowed down by a factor of 2, while the dissociation is accelerated by a factor of 3. The CO complex for the (1S)-camphor-bound P-450 is less stabilized (deltaG=-22 kJ/mol) compared to the natural substrate (1R)-camphor (deltaG=-30 kJ/mol). The data are interpreted by a smaller change of the mobility of the (1S)-camphor due to CO binding as compared to (1R)-camphor, which would indicate a higher mobility of (1S)-camphor already in the CO free reduced form of P-450cam. The higher mobility of (1S)-camphor in the heme pocket might explain the increased uncoupling rate (hydrogen peroxide formation) of 11% [Maryniak et al. (1993) Tetrahedron 49, 9373-9384] during the P-450cam catalyzed hydroxylation compared to 3% for the conversion of (1R)-camphor.

Camphor↗

[d-Camphor Reference Standard (Control 901) and dl-Camphor Reference Standard (Control 901) of National Institute of Hygienic Sciences].

The raw materials of d-camphor and dl-camphor were examined for the preparation of the "d-Camphor Reference Standard" and "dl-Camphor Reference Standard". Analytical data obtained were as follows: ultraviolet spectrum, lambda max = 257 nm; absorbance, E1%1cm(257 nm) = 723; infrared spectrum, 2956, 1742, 1045 cm-1; optical rotation, [alpha]20D = +42.9 degrees (d-camphor), [alpha]20D = -0.00 degrees (dl-camphor); melting point, 180 degrees C (d-camphor), 179 degrees C (dl-camphor); gas-chromatography, one impurity was detected in d-camphor and four impurities were detected in dl-camphor. Based on the above results, these raw materials were authorized to be the Reference Standards of the National Institute of Hygienic Sciences.

Camphor↗

Toxicity of camphorated phenol and camphorated parachlorophenol in dental pulp cell culture.

The toxicity of phenol, parachlorophenol, camphorated phenol, camphorated parachlorophenol, and camphor was evaluated using the 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide (MTT) colorimetric assay on established rat dental pulp cells (RPC-C2A). RPC-C2A cells at the confluent stage were incubated for 24 h in an experimental medium containing each compound at different concentrations. All tested drugs showed cytotoxicity in the MTT assay in a concentration-dependent manner. It is believed that camphor is a vehicle, and it reduces the toxicity of phenol and parachlorophenol. However, camphor itself showed cytotoxicity, and the addition of camphor increased the toxicity of phenol and parachlorophenol, reconfirming the cytotoxicity of these classical antiseptics.

Analysis of Variance↗

Ionization dependence of camphor binding and spin conversion of the complex between cytochrome P-450 and camphor. Kinetic and static studies at sub-zero temperatures.

The kinetic rate constants of formation and dissociation of the cytochrome-P-450 - camphor complex (Fe3+-RH) have been obtained by low-temperature (+ 5 degrees C to -20 degrees C) stopped-flow experiments. Simiarly the high-spin/low-spin equilibrium of this complex has been studied as a function of temperature and protonic activity. Both the camphor-binding mechanism and the high-spin/low-spin thermodynamic parameters of Fe3+-RH depend on the protonic activity of the medium in the physiological pH range. The binding rate constants are shown to depend on the ionization of a residue of the protein, probably a histidine. Linear enthalpy-entropy compensation is observed for the camphor binding as well as for the spin-state transition. A camphor-binding-induced change of the electrostatic potential is discussed.

Calorimetry↗

[Camphor in the Edo era - camphor and borneol for medicines].

Since borneol was frequently importe to Japan by way of China for a long time, many names have been introduced from China together with it. As technical terms for camphor were not introduced because Japan was a country that manufactured camphor and exported it, the terms were not affected by the Chinese language either. Regarding the medical use of camphor and borneol, there was not remarkable difference between medical treatment in Japan and China because such treatment was influenced by China in the Edo period. But as an industry for manufacturing drugs was developed and the business became prosperous after the 17th century in Japan, medical practitioners found their own usages for medicines incorporating borneol nad camphor.

Alcohols↗

High-pressure liquid chromatographic determination of camphor and parachlorophenol in camphorated parachlorophenol.

Quantitative analyses of both camphor and parachlorophenol in camphorated parachlorophenol by high-pressure liquid chromatography is described. A 5% solution of phenol in the mobile phase (heptane-chloroform 3:2) served as the internal standard; the assay involved addition of this phenol solution to the camphorated parachlorophenol, followed by further dilution using the mobile phase (heptane-chloroform, 3:2) and injection into the instrument.

Camphor↗

Quantitation and validation of cis-camphoric acid 3-methyl ester and cis-camphoric acid 1-methyl ester using CE.

The 1- and 3-methyl esters of cis-camphoric acid, the active agents of a mild laxative (Flubilar) have been simultaneously assayed using capillary electrophoresis (CE). The compounds are completely separated using a sodium acetate buffer pH 4.0, 40 mmol/l. In order to obtain reproducible results, [+]-naproxen has been used as internal standard (IS). Initially migration times changed over 50% within a series of 20 runs. This problem has been overcome by using an overnight capillary preconditioning (1 mol/l NaOH, 1.5 h) and subsequent equilibrating (running buffer, 12 h). Thereby a precision corresponding to a CV %, of about 1.17 and 1.42 for the cis-camphoric acid methyl esters has been obtained (six series of n = 10 runs each). The method has been validated regarding specificity, accuracy, precision, linearity and robustness. In order to test robustness, all key parameters have been considered. The result of the validation is given in nine tables. In the case under investigation, lamp age and wavelength accuracy are the most critical parameters. Therefore, the lamp age should be limited to about 1000 h. The wavelength accuracy can be indirectly controlled using quality assurance samples. According to the fundamental mechanisms in CE, changes in the voltage and in the temperature influence migration times and peak areas. However, these effects are very well compensated using an IS. Slight variations of the parameters buffer pH and molarity rinsing times, storage conditions of buffers and samples as well as the capillary material had little or no influence on the analytical results.

Camphor↗