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K Ruckpaul

Publications and source records attributed to K Ruckpaul.

At least 55 records · Page 3Linked to original sources

Identification of lysine (384) in cytochrome P-450 LM2 as functionally linked residue.

Fluorescein isothiocyanate was selectively bound to the epsilon-amino group of a lysine residue of cytochrome P-450 LM2 at rho H 8.15. The decrease in the N-demethylase activity after modification evidences the functional importance of the modified group. After tryptic digestion the FITC-labeled peptide was isolated by means of HPLC and its amino acid composition determined. It was shown that the FITC-peptide can be attributed to the sequence Gly (379)- Arg (400) and that the label is selectively bound to Lys (384).

Amino Acid Sequence↗

Effect of the gel-liquid crystalline phase transition on the reduction of cytochrome P-450 reconstituted into dimyristoyl-phosphatidylcholine liposomes.

The isolated purified components of the hepatic endoplasmic monooxygenatic system were incorporated into liposomes (dimyristoyl-phosphatidylcholine) by gel filtration technique. The temperature dependence of the reduction reaction in the range from 11 degrees C to 37 degrees C revealed a break in the Arrhenius-diagram at the phase transition temperature of dimyristoylphosphatidylcholine. The break point is in agreement with thermodynamic parameters derived from microcalorimetric studies of the monooxygenatic system reconstituted in the same way.

Animals↗

Chemical modification of tyrosine residues at the active centre of cytochrome P-450 CAM.

Soluble cytochrome P-450 CAM from Pseudomonas putida (EC 1.14.14.1) was chemically modified with tetranitromethane. At least five out of totally nine tyrosine residues are accessible to nitration as shown by tryptic peptide mapping using HPLC. Modification in the presence of the inhibitor metyrapone and subsequent peptide mapping indicate the location of one tyrosine residue at the active centre of cytochrome P-450 CAM.

Aryl Hydrocarbon Hydroxylases↗

Reconstitution of the liver microsomal monooxygenase system in liposomes from dimyristoylphosphatidylcholine.

Different techniques to incorporate the essential isolated and purified enzymes of the hepatic endoplasmic reticulum into monolamellar dimyristoylphosphatidylcholine vesicles are compared with respect to structural and functional parameters of the reconstituted system. By use of gel penetrating chromatography on Sepharose 4B, dynamic light scattering and electron microscopy the structural properties of the reconstituted system were proved comparing the reduction of P-450 LM2 via the NADPH dependent reductase and by dithionite as well with the microsomal reduction rates and by studying the binding of benzphetamine to P-450 LM2 in soluble and liposomal form.

Animals↗

Identification of the ligand trans to thiolate in cytochrome P-450 LM2 by chemical modification.

About 3 tyrosine residues of cytochrome P-450 LM2 are accessible to chemical modification with tetranitromethane. Nitration of two tyrosines inactivates the enzyme to about 20%. The partial formation of a hyper-porphyrin spectrum originating from the pK shift by nitration and formation of a tyrosinate is prevented by modification in the presence of the inhibitor metyrapone. These findings support the assumption of a tyrosine residue as sixth ligand of the heme iron in cytochrome P-450 LM2.

Animals↗

Reduction of cytochrome P-450 LM2 by NADPH in reconstituted phospholipid vesicles is dependent on membrane charge.

The kinetics of the reduction of cytochrome P-450 LM2 mediated by NADPH-cytochrome P-450 reductase in reconstituted phospholipid vesicles was examined. An inefficient reduction of the hemoprotein in phosphatidylcholine vesicles was observed. However, by introducing negatively charged phospholipids into the membrane, the rate of reduction increased in a concomitant manner to the resulting net negative charge of the vesicles. In the presence of benzphetamine, the extent of cytochrome P-450 LM2 reduced 1 s after the addition of NADPH to the system was a linear function of the electrophoretic mobilities of the vesicles used. A similar relationship between the net negative charge of the vesicles, as measured electrophoretically, and the reduction rate was also attained in the absence of substrate. The enhanced reduction was mainly reflected in an altered phase distribution of the reduction; the extent of fast phase reduction in the absence or in the presence of added substrate was dependent upon the electrophoretic mobilities of the vesicles. A similar change in the distribution of the reduction phases was observed upon decreasing the phosphatidylcholine content of the vesicles; the fast phase reduction being more pronounced in membranes with higher relative amounts of the protein components. A decrease of the rate of O-demethylation of p-nitroanisole catalyzed by P-450 LM2 parallel to the extent of fast phase reduction was observed upon dilution of neutral phosphatidylcholine membranes with phospholipid. By contrast, no effect of lipid dilution was evident in negatively charged membranes. The results are consistent with the hypothesis that the extent of fast phase reduction is governed by the amount of complex formed between NADPH-cytochrome P-450 reductase and cytochrome P-450 in the membranes; negative membranes appear to favor the formation of such complexes, whereas similar complexes are less formed, or are not functional, in neutral membranes.

Electrochemistry↗

Modification of cytochrome P-450 with fluorescein isothiocyanate.

Fluorescein isothiocyanate (FITC) has been shown to be selectively attached to the N-terminus of cytochrome P-450 LM2. The N-demethylase activity of cytochrome P-450 LM2 reconstituted systems modified in this way was inhibited by 25%. As revealed by CD measurements the overall conformation as well as the immediate heme environment of cytochrome P-450 LM2 remained unchanged after attachment of the FITC molecule. The binding affinity of modified cytochrome P-450 LM2 toward benzphetamine and aniline and the cumene hydroperoxide- or H2O2-supported N-demethylation of benzphetamine are maintained. However, the introduction of the electron via NADPH-cytochrome P-450 reductase (EC 1.6.2.4) is impaired after modification of the alpha-amino group. The extent of reduced modified cytochrome P-450 LM2 in the cytochrome P-450 reductase-supported reduction reaction is diminished and the half-time of the reduction is increased. The diminished reducibility is ascribed to steric hindrance of groups directly involved in the interaction between cytochrome P-450 LM2 and NADPH-cytochrome P-450 reductase or to blocking of the charge-pair interactions between the alpha-amino group of P-450 LM2 and the respective negatively charged group of NADPH-cytochrome P-450 reductase. By energy-transfer measurements distances between the heme and the alpha-amino group of 2.65 and 3.97 nm for the oligomeric and the monomeric forms of P-450 LM2, respectively, have been determined.

Animals↗

Correlations between spin equilibrium shift, reduction rate, and N-demethylation activity in liver microsomal cytochrome P-450 and a series of benzphetamine analogues as substrates.

Cytochrome P-450 forms a thermal ferric spin equilibrium which is significantly shifted by substrate binding. Within a series of benzphetamine analogues the liver microsomal enzyme system exhibits a close correlation of the substrate induced spin equilibrium shift towards the high spin state and both the rate of P-450 reduction, and of substrate turnover, as well. The spin equilibrium regulates the first electron transfer by favoured high spin state reduction and rapid pre-equilibration with respect to the low spin fraction.

Animals↗

Fluorescent energy transfer measurements on fluorescein isothiocyanate modified cytochrome P-450 LM2.

The distance between the heme iron and the N-terminus of cytochrome P-450 LM2 was determined by fluorescence energy transfer measurements. Fluorescein isothiocyanate which was covalently bound to the N-terminal methionine was used as donor chromophor. The Ro value between fluorescein isothiocyanate and the heme was calculated to be 3.98 nm. The distance between the nitrogen of the N-terminal methionine and the heme was estimated with 2.84 +/- 0.23 nm excluding most likely the N-terminal amino acid of cytochrome P-450 LM2 to participate in the electron transfer to the heme iron. A cytochrome P-450 LM2 membrane model is proposed.

Animals↗

Kinetics of elementary steps in the cytochrome P-450 reaction sequence. VI. Model treatment of the NADPH-dependent first electron transfer reaction between cytochrome P-450 reductase and cytochrome P-450 LM2 in solution.

The NADPH-dependent reduction of P-450 LM2 has been studied both anaerobically and aerobically in solution state. The disintegration of the constitutive proteins was obtained by means of Triton N-101. At varied P-450 reductase/P-450 ratios two sets of reaction curves were treated by computer procedures. A general reaction mechanism of a modified Michaelis-Menten type could be evidenced. Rate determination in the overall reaction could be proved to be exerted by the electron transfer in the P-450 reductase/P-450 intermediate complex. This process is unresolved as yet. The significance of the solution state investigations is outlined with respect to the functional clusters in microsomes and liposomes, respectively. The physiologically relevant cluster reduction is supposed to follow similar kinetics based on a rapid protein exchange in the clusters.

Aerobiosis↗

Kinetics of elementary steps in the cytochrome P-450 reaction sequence. V. Laser temperature-jump investigation of the spin relaxation kinetics of cytochrome P-450 LM2.

The cytochrome P-450 LM2 spin state relaxation kinetics has been resolved by means of laser temperature-jump techniques. The first order rate constants amount to about 10(6) S-1 in the substrate-free and the substrate-bound protein, respectively. Evidence is provided that the spin equilibrium preequilibrates the P-450 reduction but is not rate-limiting. Additional capacitor discharge temperature-jump studies elucidate substrate dependent perturbations.

Animals↗

[The role of the hydrophobic fragment of cytochrome b5 in the interaction with cytochrome P-450].

The interaction of highly purified liver microsomal cytochrome P-450 from phenobarbital-induced rabbits and cytochrome b5 has been investigated by the difference and second derivative difference spectroscopy. The addition of cytochrome b5 to cytochrome P-450 results in transition of cytochrome P-450 heme iron from low to high spin state. The interaction is accompanied by the changes in the second derivative spectrum of cytochrome P-450, which point to the participation of tryptophanyl residues in this process. The hydrophilic fragment of cytochrome b5 is unable to form a complex with cytochrome P-450 as judged by the absence of the difference spectrum and any changes in the second derivative UV-spectrum of cytochrome P-450. The evidence obtained indicates that the hydrophobic tail of the cytochrome b5 molecule responsible for its binding to membrane is also indispensable for forming a functional cytochrome P-450-cytochrome b5 complex.

Animals↗

Mobility and clusterlike organization of liposomal cytochrome P-450 LM2: saturation transfer EPR studies.

Rotational diffusion of the electrophoretically homogenenous isozyme cytochrome P-450 LM2 from rabbit liver microsomes has been studied in buffer solution and in phospholipid vesicles by means of saturation transfer EPR spectroscopy. Sulfhydryl groups of the enzyme were selectively modified using a maleimide spin label. The effective rotational correlation time of 220 ns for the rotation of cytochrome P-450 in buffer solution is consistent with the fact that the purified free enzyme occurs as an oligomeric (6-8 monomers) aggregate. Further, the clusters rotate almost isotropically and therefore are in a first approximation spherically shaped. The effective correlation time of about 180 microseconds observed strong immobilization thus evidencing protein aggregation within the membrane. The anisotropic character of the spectra indicates a nonspherical shape and/or anisotropic rotational motion of the cluster. The results are compared with corresponding data from cytochrome P-450 in microsomal form.

Animals↗

Molecular mechanisms of interactions between phospholipids and liver microsomal cytochrome P-450 LM2.

The interactions between cytochrome P-450 LM2, NADPH-dependent P-450 reductase and different phospholipids have been analysed in reconstituted systems utilizing spin equilibrium and the reduction reaction as sensitive probes. The results have been correlated with structural data derived from second derivative spectroscopic measurements. The data obtained indicate that phospholipids with acidic groups are of special importance in shifting the spin equilibrium to the high spin state. The detergent substitution of phospholipids, on the other hand, in the reduction reaction provides evidence that the capability to shift the spin state is not strictly correlated with the functional integrity of the system. The results imply that the phospholipids exert a linker function orienting the proteins within the bilayer into a proper interaction state. This function can be substituted by detergents. The phospholipid effect is specified by their head groups and increases with negative charges.

Animals↗

Role of the hydrophobic tail of cytochrome b5 in the interaction with cytochrome P-450 LM2.

The interaction of cytochrome P-450 LM2 with cytochrome b5 is accompanied by a high spin shift in P-450 LM2 and the improvement of a second derivative spectra in the near ultraviolet region. After incorporation into phospholipid vesicles the interaction between P-450 LM2 and b5 is increased according to a decrease of the apparent binding constant. The involvement of a tryptophanyl residue in the interaction will be discussed. Contrary the tryptic fragment of cytochrome b5 which lacks the membrane binding tail does not show an interaction with P-450 LM2 either in the absence or presence of phospholipids.

Animals↗