Search PubMedSearch

SEARCH · Search PubMed

Results for “Thromboxane B2”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Measurement of urinary 2,3-dinor-thromboxane B2 and thromboxane B2 using bonded-phase phenylboronic acid columns and capillary gas chromatography--negative-ion chemical ionization mass spectrometry.

The use of bonded-phase phenylboronic acid columns to selectively extract 2,3-dinor-thromboxane B2 and thromboxane B2 from urine is reported. The compounds were first derivatized as the methoxime and then applied to the phenylboronic acid columns. Subsequent purification by thin-layer chromatography and derivatization to the pentafluorobenzyl ester, trimethylsilyl ether followed by capillary gas chromatography-negative-ion chemical ionization mass spectrometry, monitoring specific ions, allows quantitation in the low-picogram/milliliter range. In healthy male volunteers, the median excretions of 2,3-dinor-thromboxane B2 and thromboxane B2 were 10.3 ng/h (range, 4.5-24 ng/h) and 2.8 ng/h (range, 0.5-7.3 ng/h), respectively. The method offers a noninvasive, specific approach to the study of thromboxane synthesis and platelet function in man. It is much less labor intensive than currently available methods employing electron-impact chromatography-mass spectrometry.

Boronic Acids

Plasma thromboxane B2 levels and thromboxane B2 production by platelets are increased in patients during spinal and epidural anesthesia.

Concentrations of thromboxane (Tx) B2 in plasma and its production by platelets were measured in 20 spinal and 10 epidural anesthesia patients scheduled for small operations in the lower extremities. The main metabolite of prostacyclin, 6-keto-PGF1 alpha and prostaglandin (PG) E2 in plasma were also determined. Plasma TxB2 and TxB2 production by platelets increased during both spinal and epidural anesthesia. Plasma TxB2 levels also remained elevated 1 h after anesthesia. The plasma concentrations of 6-keto-PGF1 alpha and PGE2 did not change during spinal or epidural anesthesia. In in vitro studies, only low concentrations of lidocaine (0.5-1.0 micrograms/ml) and bupivacaine (0.5-3.0 micrograms/ml) increased platelet TxB2 production. In platelet rich plasma, neither lidocaine nor bupivacaine in concentrations of 0.5-3.0 micrograms/ml caused constant changes in ADP-induced platelet aggregation, but they inhibited it in toxic concentrations (12 micrograms/ml). The results suggest that the increased TxB2 plasma levels and platelet TxB2 production during regional anesthesia are not caused by local anesthetics itself but by other factors, e.g. tissue trauma. In clinically found concentrations, local anesthetics do not cause any constant changes in platelet aggregation.

6-Ketoprostaglandin F1 alpha

Peroxisomal chain-shortening of thromboxane B2: evidence for impaired degradation of thromboxane B2 in Zellweger syndrome.

We have shown that rat liver peroxisomes can chain-shorten prostaglandins to dinor- and tetranor-metabolites. In a recent in vivo study we could demonstrate that peroxisomes are of major importance for chain-shortening of prostaglandin F2 alpha in humans (1991, Diczfalusy et al. J. Clin. Invest. 88:978-984). This was shown by identifying the major urinary metabolites of radiolabeled prostaglandin F2 alpha given intravenously to a patient lacking functional peroxisomes (Zellweger syndrome). In the present investigation we have studied the peroxisomal chain-shortening of thromboxane B2, a compound structurally related to prostaglandins. Isolated rat liver peroxisomes oxidized thromboxane B2 to a chain-shortened metabolite in an NAD(+)-dependent reaction. The metabolite was identified as 9,11,15-trihydroxy-2,3,4,5-tetranor-thromb-13-enoic acid (tetranor-thromboxane B1). The urinary excretion of the major beta-oxidized metabolites of thromboxane B2 and prostacyclin was determined in three Zellweger patients and six age-matched controls. The controls excreted on an average 1.7 and 1.1 ng/mg creatinine of 2,3-dinorthromboxane B2 and 2,3-dinor-6-keto-prostaglandin F1 alpha, respectively. In none of the three Zellweger patients could these dinor-metabolites be detected, i.e., the urinary excretion was less than 0.2 ng/mg creatinine. This shows that peroxisomes play an important role in the degradation of the carboxyl side chain of thromboxane B2 in vivo.

Animals

Circulating and urinary thromboxane B2 metabolites in the rabbit: 11-dehydro-thromboxane B2 as parameter of thromboxane production.

The metabolism of thromboxane B2 was studied in the rabbit. The aim of the study was to identify metabolites in blood and urine that might serve as parameters for monitoring thromboxane production in vivo. [5,6,8,9,11,12,14,15-3H8]-Thromboxane B2 was administered by i.v. injection to rabbits, and blood samples and urine were collected with brief intervals. The metabolic profiles were visualized by two-dimensional thin layer chromatography and autoradiography, and the structures of five major metabolites were determined using chromatographic and mass spectrometric methods. In urine the major metabolites were identified as 11-dehydro-TXB2 and 2,3,4,5-tetranor-TXB1, and other prominent products were 11-dehydro-2,3,4,5-tetranor-TXB1, 2,3-dinor-TXB1 and 2,3-dinor-TXB2. In the circulation, TXB2 was found to disappear rapidly. The first major metabolite to appear was 11-dehydro-TXB2, which also remained a prominent product in blood for the remainder of the experiment (90 min). With time, the profile of circulating products became closely similar to that in urine. TXB2 was not converted into 11-dehydro-TXB2 by blood cells or plasma. The dehydrogenase catalyzing its formation was tissue bound and was found to have a widespread occurrence: the highest conversion was found in lung, kidney, stomach and liver. The results of the present study suggest that 11-dehydro-TXB2 may be a suitable parameter for monitoring thromboxane production in vivo in the rabbit in blood as well as urinary samples, and possibly also several tissues. This was also demonstrated in comparative studies using radioimmunoassays for TXB2 and 11-dehydro-TXB2.

Alcohol Oxidoreductases

Quantitative profiling of 6-ketoprostaglandin F1 alpha, 2,3-dinor-6-ketoprostaglandin F1 alpha, thromboxane B2 and 2,3-dinor-thromboxane B2 in human and rat urine by immunoaffinity extraction with gas chromatography-mass spectrometry.

A rapid and simple method based on immunoaffinity extraction, stable isotope dilution and gas chromatography-mass spectrometry has been developed for profiling urinary metabolites of prostacyclin and thromboxane. 6-Ketoprostaglandin F1 alpha (6-keto-PGF1 alpha), 2,3-dinor-6-ketoprostaglandin F1 alpha (2,3-dinor-6-keto-PGF1 alpha), thromboxane B2 (TXB2) and 2,3-dinor-thromboxane B2 (2,3-dinor-TXB2) were quantitatively extracted from human or rat urine spiked with deuterated internal standards using mixed-bed columns containing immobilized anti-6-keto-PGF1 alpha and anti-TXB2 antibodies (cross-reacting with 2,3-dinor-6-keto-PGF1 alpha and 2,3-dinor-TXB2, respectively). The extract was directly derivatized to form pentafluorobenzyl ester, methyloxime, trimethylsilyl ether derivatives. Quantitation was performed by stable isotope dilution assay and high-resolution gas chromatography-negative ion chemical ionization mass spectrometry, by monitoring the carboxylate anions (M-181) of the derivatized metabolites. The method was applied to evaluate the urinary excretion of 6-keto PGF1 alpha, 2,3-dinor-6-keto-PGF1 alpha, TXB2 and 2,3-dinor-TXB2 in humans and rats. Results were in accordance with previously reported data obtained by other methods. Novel data on the urinary excretion of 2,3-dinor-6-keto-PGF1 alpha in rats under basal conditions are presented. This sensitive and selective method represents a significant advance in terms of rapidity and simplicity over other immunoaffinity-gas chromatography-mass spectrometry methods for measuring single prostanoids, such as 6-keto-PGF1 alpha or TXB2, since it allows profiling of a group of metabolites whose balance is important in several physiopathological conditions.

6-Ketoprostaglandin F1 alpha

Purification and characterization of an NAD(+)-dependent dehydrogenase that catalyzes the oxidation of thromboxane B2 at C-11 from porcine liver. Development and application of 11-dehydro-thromboxane B2 radioimmunoassay to enzyme assay.

11-Dehydro-thromboxane B2 has been identified as a major metabolite of infused as well as endogenous thromboxane B2 in mammalian plasma and urine. This metabolite is derived from thromboxane B2 by enzymatic oxidation at C-11 catalyzed by 11-hydroxythromboxane B2 dehydrogenase. A radioimmunoassay for 11-dehydro-thromboxane B2 has been developed and used for enzyme assay, purification and characterization. Antibodies were generated against 11-dehydro-thromboxane B2 conjugated to bovine thyroglobulin. Labeled marker was prepared by radioiodinating 11-dehydro-thromboxane B2-tyrosine methyl ester conjugate. A sensitive radioimmunoassay capable of detecting 10 pg of 11-dehydro-thromboxane B2 per assay tube was developed. The antibodies showed minimal crossreaction with thromboxane B2 (0.03%), prostaglandin D2 (2.76%) and other eicosanoids (less than 0.03%). The enzyme activity was determined by assaying NAD(+)-dependent formation of immunoreactive 11-dehydro-thromboxane B2 from thromboxane B2. The enzyme was found to be enriched in liver although significant activity was also detected in gastrointestinal tract and kidney in pig. The enzyme was purified from porcine liver cytosol to apparent homogeneity using conventional and affinity chromatography. The purified enzyme exhibited coenzyme specificity for NAD+ and used thromboxane B2 as a substrate. The enzyme also catalyzes NADH-dependent reduction of 11-dehydro-thromboxane B2 to thromboxane B2 indicating the reversibility of the enzyme catalyzed reaction. The apparent Km values for thromboxane B2, 11-dehydro-thromboxane B2 and NAD+ are 8.1, 8.0 and 23 microM, respectively. Subunit Mr was shown to be 55,000, whereas the native enzyme Mr was found to be 110,000 indicating that the enzyme is a dimer. The enzyme is sensitive to sulfhydryl inhibitions suggesting cysteine residues are essential to enzyme activity. The availability of a homogeneous enzyme preparation should allow further studies on the substrate specificity and the structure and function of the enzyme.

Animals

Antibody-mediated extraction/negative-ion chemical ionization mass spectrometric measurement of thromboxane B2 and 2,3-dinor-thromboxane B2 in human and rat urine.

An antibody-mediated extraction method for gas chromatographic-mass spectrometric analysis of thromboxane A2 (TXA2) urinary metabolites is reported. An antibody (Ab) raised against thromboxane B2 (TXB2) (35% cross-reacting with 2,3-dinor-TXB2) was coupled to CNBr-activated Sepharose 4B (Se) and used as stationary phase for simultaneous extraction of both compounds from urine. After addition of deuterium-labeled TXB2 as internal standard, rat or human urine was percolated through a small Ab-Se column. After being washed, the eluate was directly derivatized to the pentafluorobenzyl ester, methyloxime, and trimethylsilyl ether. Quantitation was performed by high-resolution gas chromatography-negative-ion chemical ionization mass spectrometry, monitoring the carboxylate anions. This method was applied to evaluate the urinary excretion of TXB2 and 2,3-dinor-TXB2 in humans and rats. We report on the excretion of 2,3-dinor-TXB2 in the rat. This novel approach to the extraction of urinary thromboxanes is more convenient than currently available methods in terms of simplicity, rapidity, and recovery. This method could be extended to any other prostanoid for which an antibody could be obtained.

Animals

Determination of 6-keto-PGF1 alpha, 2,3-dinor-6-keto-PGF1 alpha, thromboxane B2, 2,3-dinor-thromboxane B2, PGE2, PGD2 and PGF2 alpha in human urine by gas chromatography-negative ion chemical ionization mass spectrometry.

A method for quantification of 6-keto-PGF1 alpha, 2,3-dinor-6-keto-PGF1 alpha TXB2, 2,3-dinor TXB2, PGE2, PGD2 and PGF2 alpha in human urine samples, using gas chromatography-negative ion chemical ionization mass spectrometry, is described. Deuterated analogues were used as internal standards. Methoximation was carried out in urine samples which were subsequently applied to phenylboronic acid cartridges, reversed-phase cartridges and thin-layer chromatography. The eluents were further derivatized to pentafluorobenzyl ester trimethylsilyl ethers for final quantification by gas chromatography-mass spectrometry. The overall recovery was 77% for tritiated 6-keto-PGF1 alpha and 55% for tritiated TXB2. Urinary levels of prostanoids were determined in a group of six volunteers before and after intake of the thromboxane synthase inhibitor Ridogrel, and related to creatinine clearance.

6-Ketoprostaglandin F1 alpha

[Thrombogenic factors in the elderly. Evaluation of the plasma concentrations of thromboxane B2 and antithrombin III].

The aim of this study is to prove the existence of a major tendency of platelet aggregation in elderly patients compared to medium-aged adults and, also, to detect whether it is affected by the presence of diabetes mellitus. Plasmatic concentrations of B2 thromboxane (TXB2) and antithrombin III (AT III) were determined in 73 elderly patients of both sexes; 56 without metabolic disease known (Group a) and 17 diabetic patients, 7 type I (Group bI) and 10 of type II (Group bII); and 12 healthy adults (control group). Medium plasmatic concentration of TXB2 was significantly higher (p less than 0.001) in Group a (55 +/- 14 ng/ml) compared to the control group (37 +/- 9 ng/ml) and there was no difference between Group bI (53 +/- 19 ng/ml) and bII (57 +/- 15 ng/ml). No variations were noted in ATIII concentration between the adults (27.4 +/- 2.3 mg/dl) and elderly patients (a = 29.6 +/- 4.4, bI = 29 +/- 2.6, bII = 31.2 +/- 5.9 mg/dl). In elderly patients, there appears to be a state of platelet pro-aggregation without influence of any risk factor, such as diabetes. This could explain the thrombogenic tendency of this age group.

Aged

Urinary thromboxane B2 and 2,3-dinor-thromboxane B2 in the neonate born at full-term age.

We have developed a method for measurement of urinary 2,3-dinor-TXB2, which is a reflection of the actual rate of TXA2 synthesis by platelets in vivo. This determination was based on purification by high-pressure liquid chromatography and on measurement by RIA. After validation of the assay, we established the range of urinary Tx metabolites in healthy infants born at full-term during their first week of life. The 2,3-dinor-TXB2 levels were higher than in adults and declined gradually during the first seven days of life.

Chromatography, High Pressure Liquid

Effects of ethanol intoxication and hangover on plasma levels of thromboxane B2 and 6-keto-prostaglandin F1 alpha and on thromboxane B2 formation by platelets in man.

We detected a significant decrease in plasma thromboxane B2 (TXB2) and 6-keto-prostaglandin F1 alpha (6-keto-PGF1 alpha) levels together with a significant increase in plasma 6-keto-PGF1 alpha/TXB2 ratio in young healthy non-alcoholic male volunteers after acute ingestion of ethanol (1.5 g/kg). Paradoxically, during ethanol intoxication and the following hangover a significant increase in ADP-induced formation of TXB2 by the platelet rich plasma could be observed, which suggests that ethanol intoxication via some unknown mechanism sensitized platelets to produce TXB2. Whether these observations contribute to the increased risks of subarachnoid haemorrhage or ischaemic brain infarction among occasional heavy drinkers recently described by us remains to be proved.

Adenosine Diphosphate

Coronary artery thrombosis and elevated urine immunoreactive thromboxane B2.

Immunoreactive thromboxane B2 (i-TXB2) was measured by radio-immunoassay (RIA) in urines collected over eight hours on the day of admission in 25 patients who were admitted with the diagnosis of myocardial infarction. In 16 of the patients myocardial infarction was confirmed by ECG and plasma enzymes. Another patient presented with pulmonary embolism and the remaining eight patients had angina pectoris. A further eight hour urine collection was obtained 24 hours later from eleven of the sixteen patients with myocardial infarction. In these eleven patients myocardial infarction was associated with five fold higher urine i-TXB2 (2.72 +/- 0.48 ng/ml) at the day of admission when compared to patients admitted under the same diagnosis but found to have angina only (0.51 +/- 0.08 ng/ml, p less than 0.001). In patients with myocardial infarction the urine i-TXB2 values were reduced 24 hours later (1.58 +/- 0.27 ng/ml, p less than 0.01). One patient was followed with urine i-TXB2 from three days prior to diagnosis of myocardial infarction and to one day prior to a second infarction. In this patient i-TXB2 was highest three days prior to infarction. We conclude that this early elevation of urine i-TXB2 three days prior to diagnosis of infarction and the increased i-TXB2 in patients with myocardial infarction when compared to patients with angina suggest thromboxane is probably released from activated platelets prior to infarction. We suggest that urine i-TXB2 may be of value in the differential diagnosis between myocardial infarction and angina.

Aged

Studies on the urinary excretion of thromboxane B2 in Zellweger patients and control subjects: evidence for a major role for peroxisomes in the beta-oxidative chain-shortening of thromboxane B2.

In this paper we studied the urinary excretion of thromboxane B2 and its beta-oxidation product 2,3-dinor-thromboxane B2 in urines from control subjects and four Zellweger patients, which lack morphologically distinguishable peroxisomes. In the urine of three classical Zellweger patients we found a ratio of 2,3-dinor-thromboxane B2/thromboxane B2 of 0.35, 0.48 and 0.62 respectively, whereas in healthy children and adults values were found of 3.1-10 and 5.5-40 respectively. These data strongly suggest that peroxisomes are a major site for beta-oxidation of thromboxane B2.

Adult

Tandem mass spectrometric determination of 11-dehydrothromboxane B2, an index metabolite of thromboxane B2 in plasma and urine.

11-Dehydrothromboxane B2 is one of the major enzymatic metabolites of thromboxane B2 (TXB2), a biologically inactive product of thromboxane A2. The short half-life of thromboxane A2 and ex vivo production of thromboxane B2 by platelet activation make these prostanoid metabolites inappropriate as indices of systemic thromboxane biosynthesis, whereas 11-dehydro-TXB2 has been shown to reflect the release of thromboxane A2 in the human blood circulation. Analysis of 11-dehydro-TXB2 in plasma and urine was performed by gas chromatography-mass spectrometry-mass spectrometry using the chemically synthesized tetradeuterated compound as an internal standard. The high selectivity of triple-stage quadrupole mass spectrometry (tandem mass spectrometry) considerably facilitates sample purification as compared to single quadrupole mass spectrometric determination. Plasma concentrations in five healthy male volunteers were in the range 0.8-2.5 pg/ml. Urinary excretion of 11-dehydro-TXB2 was higher than that of 2,3-dinor-TXB2: 1.2 +/- 0.36 micrograms/24 h vs 0.53 +/- 0.33 micrograms/24 h (n = 5). Thus 11-dehydro-TXB2 appears at present to be the best index metabolite of systemic TXA2 activity in plasma as well as in urine.

Chromatography, Thin Layer