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2,5-Diaziridinyl-3,6-bis(carboethoxyamino)-1,4-benzoquinone I: Kinetics in aqueous solutions by high-performance liquid chromatography.

The application of a rapid, selective, and sensitive reversed-phase high-performance liquid chromatographic method to the analysis of 2,5-diaziridinyl-3,6-bis(carboethoxyamino)-1,4-benzoquinone (I) and its degradation products is described. The method was used to study the kinetics of degradation of I over pharmaceutically useful pH ranges. The overall reaction rate followed pseudo-first-order kinetics. The pH-rate profile demonstrated optimal stability between pH 6.0 and 6.5. The degradation behavior suggests the existence of multiple pathways. The temperature dependence of th disappearance of I also was evaluated from the regression equation derived from the Arrhenius plot.

Antineoplastic Agents↗

2,5-Diaziridinyl-3,6-bis(carboethoxyamino)-1,4-benzoquinone II: Isolation and characterization of degradation products.

A direct high-performance liquid chromatographic (HPLC) method was applied to monitor 2,5-diaziridinyl-3,6-bis(carboethoxyamino)-1,4-benzoquinone (I) and its degradation products in pharmaceutical vehicles at 25 +/- 0.1 degrees. At the optimal pH for stability of I, an increase in buffer concentration [phosphate and tris(hydroxymethyl)-aminomethane] or ionic strength accelerated degradation. The reaction rate in the solutions studied followed pseudo-first-order kinetics. Degradation products were characterized by mass spectrometry after isolation by semipreparative HPLC. Different degradation pathways prevailed in acidic and basic media. The acid-catalyzed reaction resulted in consecutive aziridine ring opening, while the base-catalyzed reaction led to nucleophilic displacement of thie aziridine ring(s).

Antineoplastic Agents↗

Mechanism for the reductive activation of diaziquone.

In order to understand the redox properties of diaziquone (AZQ) and the reductive alkylation role of its one-electron reduced free radical anion AZQ- in biological systems, we investigated the electrochemical and structural properties of AZQ and its reduced species by cyclic voltammetry, controlled potential electrolysis, optical absorbance spectroscopy and 1H NMR. This study was carried out in aqueous media as well as in Me2SO. In aqueous media AZQ can be reduced by 2 electrons to the dianion AZQ2- which is oxidized back to AZQ- and AZQ. In Me2SO, 1 - e- reduction or oxidation steps are possible. This allowed the characterization of AZQ and its 1 or 2 - e- reduced species by UV-visible absorbance spectroscopy. The redox properties of the aziridine rings were observed by cycle voltammetry. Using 1H NMR, it was possible to follow the structural dependence of AZQ on the nature of the medium. Protonation of the aziridine rings at low pH may facilitate the opening of the ring leading to the carbonium ion, the required species for alkylation. Cyclic voltammetry data indicate that reduction of the quinone facilitates the aziridine ring opening.

Antineoplastic Agents↗

Tumor tissue is more sensitive to mitomycin C, carboquone, and aclacinomycin A than is adjacent normal tissue in vitro.

In tissues obtained from patients undergoing gastrectomy or colectomy, sensitivity to mitomycin C (MMC), carboquone (CQ), and aclacinomycin A (ACR) was examined in 20 tumors (15 gastric, 5 colorectal) and in the adjacent normal mucosal tissues, using the in vitro succinate dehydrogenase inhibition test. The succinate dehydrogenase (SD) activity decreased to a greater extent in the tumor tissues than in adjacent normal tissues, at rates of 80% for MMC, 80% for CQ, and 90% for ACR. There were no correlations between SD activities of tumor and adjacent normal tissue, r = 0.157 for MMC, r = 0.435 for CQ, and r = 0.375 for ACR. Normal tissues were sensitive to MMC in 25% of cases sensitive to MMC in the tumor tissues, 46% for CQ, and 38% for ACR. These results show that the antitumor effects of MMC, CQ, and ACR are relatively specific for tumor tissues and that the assay of chemosensitivity of normal tissues is meaningful for predicting the toxic effects of antitumor drugs on these tissues.

Aclarubicin↗

Factors influencing the severity and progress of ethylenimine-induced papillary necrosis.

The severity of the renal papillary necrosis produced in rats by ethylenimine is dependent both on dose and urinary concentration within the medulla. When this is reduced by diuresis, the severity of the lesion is effectively reduced. Increasing urinary concentration has a reverse effect, but of less magnitude. When the concentrating power of the renal medulla is impaired by a single dose of ethylenimine, insufficient to cause necrosis of the whole papilla, further doses of ethylenimine do not cause progressive damage to the papilla.

Ammonium Chloride↗

Radiolabeling of the lipids of chinese hamster ovary cells with the probe [3-(trifluoromethyl)-3-(m-[125I]iodophenyl)diazirine].

[125I]TID [3-(trifluoromethyl)-3-(m-[125I]iodophenyl)diazirine] is a commercially available, hydrophobic, photoactivatable, gamma-emitting reagent mostly used to label protein hydrophobic domains. It has also been used to radiolabel the phospholipids of lung surfactant (Gilliard et al., Anal. Biochem. 193, 310-315, 1991). Since a nonspecific, highly sensitive, lipid-labeling probe would be a very useful tool to investigate lipid-protein interactions in biological membranes, we characterized further the [125I]TID-labeling products of lipids from cultured Chinese hamster ovary cells (IR-CHO). After labeling of whole cells, TLC analysis followed by autoradiography enabled detection of sphingomyelin, phosphatidylcholine, phosphatidylinositol, phosphatidylserine, phosphatidylethanolamine, cardiolipin, diglycerides, cholesterol and its esters, and triglycerides. Analysis of the radioactivity associated with the saponification products of different lipids showed that [125I]TID was mostly (80%) extracted with the fatty acid moiety of the lipids whereas 20% remained associated with the hydrosoluble moiety. Similar radioactivity profiles were observed after labeling of whole cells or extracted and liposome-reconstituted lipids; the [125I]TID probe was able to diffuse in all intracellular organelles. Labeling was not equivalent between the different lipid classes, and it appeared that the amount of associated radioactivity correlated well with the degree of lipid unsaturation. This was confirmed by studying [125I]TID incorporation in phosphatidylcholines of different chain length and unsaturation. Taken together, our data demonstrate that [125I]TID can be used as a radiolabel for lipids in cultured cells. It is rapidly incorporated in the hydrophobic part of membranes, diffuses into all cellular compartments, and labels all lipid classes, including phospholipids, cholesterol, and glycerides, with a sensitivity in the nanomolar range.

Animals↗

Time-resolved photolabeling of membrane proteins: application to the nicotinic acetylcholine receptor.

An apparatus has been developed that allows photoaffinity ligands to be crossed-linked to milligram quantities of membrane proteins with maximum attainable yield following contact times of approximately 1 ms. The apparatus consisted of three parts: a conventional rapid mixing unit, a novel freeze-quench unit, and a photolabeling unit. The freeze-quench unit consisted of a rapidly rotating metal disk which was precooled in liquid nitrogen. Correct alignment of the exit jet from the sample mixer allowed up to 2 ml of sample to be frozen in a thin film on the disk. Experiments with colorimetric reactions showed the combined dead time of mixing and freeze-quenching to be submillisecond. Photoincorporation was maximized by prolonged irradiation of the freeze-quenched sample. Using this apparatus we determine the binding kinetics of the resting state channel inhibitor 3-[125I](trifluoromethyl)-3-(m-iodophenyl) diazirine (TID) to nicotinic acetylcholine receptor-rich membranes from Torpedo. The binding kinetics for the 125I-labeled alpha and delta subunits were biphasic; about half the binding was complete by 2.4 ms, and the remainder could be resolved and occurred with a pseudo-first-order rate constant determined at 4 microM [125I]TID of 12.0 +/- 2.3 and 13.6 +/- 4.0 s-1, respectively. This compares well to the same constant determined for the inhibition of agonist-induced cation flux in Torpedo membranes.

Animals↗

Binding of active cyclosporins to cyclophilin A and B, complex formation with calcineurin A.

The binding properties of several active and inactive cyclosporins to the major intracellular receptor proteins, cyclophilin A and B, as well as the interaction with the phosphatase calcineurin were investigated by ELISA and by means of a photoaffinity labeled probe (PL-CS). Binding to recombinant human cyclophilin A and B was rapid and saturable, and correlated with the in vitro immunosuppressive activity of cyclosporin derivatives. In the presence of cyclophilin A or B and calcium cyclosporin binds specifically to purified bovine calcineurin. PL-CS labeled only the calcineurin A subunit, but not the B subunit or calmodulin. Calcineurin A binding was competed by active (CsA, CsG or CsM), but not inactive (CsH, CsF) derivatives or the structurally unrelated macrolide immunosuppressant FK506. Ternary complexes containing equimolar ratios of cyclophilin A or B, PL-CS and calcineurin were resolved by chemical-crosslinking. The formation of these complexes was apparently specific, calcium-, but not calmodulin-dependent, and only inhibited by active cyclosporins. In vivo labelling of Jurkat T-cells revealed, that cyclophilin A and calcineurin A are the main labeled proteins, which form complexes in the presence of active cyclosporin. Thus, we demonstrate directly, that active cyclosporins have two recognition sites, which allow the in vivo recognition of cyclophilins and calcineurin A.

Affinity Labels↗

A universal virus inactivant for decontaminating blood and biopharmaceutical products.

Removal of virus infectivity from blood and biopharmaceutical products prepared from blood is an issue of considerable importance. For biopharmaceutical products, removal can usually be achieved by a series of fractionation steps or by inactivation with a suitable reagent. Irrespective of the methods that are chosen it is vital that the biological activity of the product is not impaired. For blood and unfractionated plasma or serum, the problem is even more challenging. Selective inactivation of the genome is the key step in the preparation of killed virus vaccines. Viruses belonging to all the recognised families can be inactivated by imines. In this paper it is shown that the biological properties of several proteins, including the cell growth-promoting factors in calf serum, are not impaired using conditions which ensure the inactivation of > 10(15) infectious units of poliovirus and foot-and-mouth disease virus (FMDV). Also shown is that both viruses can be inactivated by imines at 4 degrees C, thus providing a method for removing infectivity from protein preparations which are unstable at higher temperatures. The RNA extracted from FMDV inactivated at 4 degrees C was not degraded and contained no hidden breaks but nevertheless was non-infectious. However, it could be amplified by PCR using primers corresponding to the gene coding for a portion of the viral RNA polymerase, but not from that coding for VP1, one of the structural proteins, showing that alteration of a base or bases had occurred in that region. Surprisingly, it could be translated in the rabbit reticulocyte system although some of the products were different from those obtained with unmodified RNA.

Animals↗

Site-specific photocrosslinking to probe interactions of Arf1 with proteins involved in budding of COPI vesicles.

ADP-ribosylation factor 1 (Arf1) plays an important role in early and intra-Golgi protein trafficking. During this process, Arf1 interacts with many different proteins and other molecules that regulate its state of activation or are involved in its intracellular function. To determine which of these proteins interact directly with Arf1 during coat protein type I (COPI) vesicle biogenesis, we probed the molecular environment of Arf1 by use of site-specific photocrosslinking. This method was first used successfully in the field of protein trafficking to study the mechanisms involved in protein translocation across the endoplasmic reticulum during protein synthesis. In such a hydrophobic environment, crosslink yields of up to 30% have been observed. We have now applied this method to study the mechanism of vesicle budding from the cytosolic face of the Golgi apparatus, an aqueous environment. Although the crosslink yield is significantly lower under these conditions, due to predominant reaction of the photolabile probes with water, a specific interaction of Arf1 with subunits of coatomer, the major coat protein of COPI vesicles, could readily be identified.

ADP-Ribosylation Factor 1↗