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C B Chen

Publications and source records attributed to C B Chen.

At least 37 records · Page 2Linked to original sources

Is urea formation regulated primarily by acid-base balance in vivo?

Large quantities of ammonium and bicarbonate are produced each day from the metabolism of dietary protein. It has recently been proposed that urea synthesis is regulated by the need to remove this large load of bicarbonate. The purpose of these experiments was to test whether the primary function of ureagenesis in vivo is to remove ammonium or bicarbonate. The first series of rats were given a constant acid load as hydrochloric acid or ammonium chloride; individual rats received a constant nitrogen load at a time when their plasma acid-base status ranged from normal (pH 7.4, 28 mM HCO3) to severe metabolic acidosis (pH 6.9, 6 mM HCO3). Urea plus ammonium excretions and the blood urea, glutamine, and ammonium concentrations were monitored with time. Within the constraints of non-steady-state conditions, the rate of urea synthesis was constant and the plasma glutamine and ammonium concentrations also remained constant; thus it appears that the rate of urea synthesis was not primarily regulated by the acid-base status of the animal in vivo over a wide range of plasma ammonium concentrations. In quantitative terms, the vast bulk of the ammonium load was converted to urea over 80 min; only a small quantity of ammonium appeared as circulating glutamine or urinary ammonium. Urea synthesis was proportional to the nitrogen load. A second series of rats received sodium bicarbonate; urea synthesis was not augmented by a bicarbonate load. We conclude from these studies that the need to dispose of excess bicarbonate does not primarily determine the rate of ureagenesis in vivo. The data support the classical view that ureagenesis is controlled by the quantity of ammonium to be removed.

Acid-Base Equilibrium↗

Development of a test to evaluate the transtubular potassium concentration gradient in the cortical collecting duct in vivo.

The purpose of these investigations was to develop a noninvasive test to estimate the transtubular potassium concentration gradient (TTKG) and thereby aldosterone action in the late distal convoluted tubule and the cortical collecting duct in patients with disorders of potassium excretion. Experiments were performed in rats under conditions where the ratio of urine to renal venous potassium concentration could reflect this TTKG. A large furosemide-induced diuresis ensured that sodium delivery was adequate and minimized the change in water content during transit through the medullary collecting duct (equal osmolality and TF/P inulin at the base and the tip of the medullary collecting duct). There was no significant potassium reabsorption nor secretion during transit through the medulla as shown by micropuncture and microcatheterization. Thus the potassium concentration in the urine should mirror that in the lumen at the major nephron sites of potassium secretion. The potassium concentration in the renal vein provides the simplest estimate of the cortical peritubular potassium concentration (the mean renal A-V difference for potassium was 1.2 mM); with a very high fractional excretion of potassium, an adjustment can be made to the arterial potassium concentration to correct for the potassium extracted. If the urine/plasma potassium concentration ratio were a quantitative reflection, then the transepithelial potential difference (TEPD) would be close to -40 mV in normal rats. The TTKG fell to unity when amiloride was given, consistent with an abolition of the apparent TEPD in vivo by this drug. Similar results were obtained in non-diuretic rats. The clinical implications of these findings are discussed.

Aldosterone↗

Template-directed synthesis on oligodeoxycytidylate and polydeoxycytidylate templates.

Oligodeoxycytidylic acids and polydeoxycytidylic acid are effective templates for the polymerization of guanosine 5'-(phospho-2-methylimidazolide). They may be substituted for the corresponding ribo-oligomers without greatly changing the course of the reactions. Since oligomers of deoxynucleotides are much more easily synthesized than the ribo-oligomers, this finding, if it proves general, should greatly facilitate the study of the template properties of oligomers containing two or more bases. Oligodeoxycytidylates facilitate the synthesis of oligoguanylates up to one residue longer than the template in high yield, and oligoguanylates up to twice the length of the template in significant yield. The time-course and regiospecificity of these reactions suggest that "sliding" and "double-templating" are important factors in determining the pattern of reaction products.

Chromatography, High Pressure Liquid↗

Substrate utilization by the distal nephron in dogs with chronic metabolic acidosis: studies with ethacrynic acid.

Glutamine and lactate oxidations provide the bulk of ATP required for sodium reabsorption in the dog kidney during chronic metabolic acidosis. Indirect evidence has suggested that glutamine is oxidized in the proximal convoluted tubule; if this is true, lactate should be the major fuel of the more distal nephron sites. The purpose of these experiments was to determine which substrates were metabolized by the acidotic dog kidney when a significant proportion of sodium chloride reabsorption was inhibited in the thick ascending limb of the loop of Henle. Ethacrynic acid, a loop diuretic, caused the fractional excretion of sodium to increase from 1 to 34%. The glomerular filtration rate declined somewhat, but there was no significant change in the renal blood flow rate. Renal oxygen consumption declined in conjunction with the natriuresis. However, when the data were examined at a constant filtered load of sodium (a constant rate of ATP turnover), there was no reduction in glutamine uptake or glutamine conversion to ATP in the presence of this natriuretic agent. The major change observed concerned lactate metabolism, in the presence of ethacrynic acid, there was no longer a significant rate of lactate extraction. These data are best explained by assuming that glutamine is the fuel of the proximal convoluted tubule of the acidotic dog kidney, whereas lactate oxidation occurs principally in the nephron sites where sodium reabsorption was inhibited by ethacrynic acid.

Acidosis↗

Effect of the blood lactate concentration on renal glutamine metabolism in dogs with chronic metabolic acidosis.

It appears that glutamine and lactate are the principal substrates for the kidney in dogs with chronic metabolic acidosis. Accordingly, the purpose of this study was to determine if a higher or lower rate of renal lactate extraction would influence the rate of glutamine extraction at a constant rate of renal ATP turnover. The blood lactate concentration was 0.9 +/- 0.01 mM in 15 acidotic dogs. However, eight dogs with chronic metabolic acidosis had a spontaneous blood lactate concentration of 0.5 mM or lower. The kidneys of these dogs extracted considerably less lactate from the arterial blood (19 vs. 62 mumol/100 mL glomerular filtration rate (GFR]. Nevertheless, glutamine, alanine, citrate, and ammonium metabolism were not significantly different in these two groups of dogs. Renal ATP balance in acidotic dogs with a low blood lactate could only be achieved if a substrate other than additional glutamine were oxidized in that segment of the nephron which normally oxidized lactate; presumably a fat-derived substrate and (or) lactate derived from glucose was now the metabolic fuel at these more distal sites. When the blood lactate concentration was greater than 1.9 mM, lactate extraction rose to 219 mumol/100 mL GFR. Glutamine, alanine, citrate, and ammonium metabolism were again unchanged; in this case, ATP balance required substrate flux to products other than carbon dioxide, presumably, gluconeogenesis. It appears that renal ammoniagenesis is a proximal event and is independent of the rate of renal lactate extraction.

Acidosis↗

Influence of solutes in plasma on the total CO2 content determination: implications for clinical disorders.

The purpose of these experiments was to determine the effect of non-aqueous solids on the total CO2 content of plasma. Two major groups of compounds were explored; those which reduced the total CO2 content, such as saline, and those which did not, such as albumin. To assess the former, sufficient sodium chloride was added to a bicarbonate solution gassed with 5% CO2 to increase the total volume by 10%. The total CO2 content fell the predicted 10% from 27.2 to 24.5 mmol/L when sodium chloride was added. In contrast, when the aqueous volume of a bicarbonate solution gassed with 5% CO2 was decreased by isohydric albumin, the total CO2 content was not reduced. We hypothesize that carbamino-compounds were formed with albumin and this raised the volume of CO2 released by an excess of acid. Therefore, the calculated pK' for the bicarbonate buffer system, which is derived from solutions lacking proteins, is not solely determined by the concentrations of bicarbonate, dissolved CO2, carbonate and carbonic acid when albumin is present. The clinical implications of these results will be discussed.

Acid-Base Imbalance↗

Effect of acute changes in the PaCO2 on acid-base parameters in normal dogs and dogs with metabolic acidosis or alkalosis.

There is a linear relationship between the PaCO2 and blood hydrogen ion concentration in normal dogs, but for theoretical reasons to be discussed, we questioned whether this relationship would apply in animals with metabolic acidosis or alkalosis. To study this in more detail, animals were divided into three groups: normal, metabolically acidotic, and metabolically alkalotic. Following anesthesia and bilateral ureteral ligation, dogs were intubated and ventilated to produce acute steady state PaCO2 values corresponding to the range observed during disease states. Changes in the volume and electrolyte composition of the gastrointestinal fluid and urine as well as the concentration and distribution of lactate were evaluated in all experiments. We observed the previously described linear relationship between the PaCO2 and blood hydrogen ion concentration in normal dogs, but the slope of the regression line differed significantly from those of dogs with metabolic acidosis and metabolic alkalosis. On the other hand, there was a consistent relationship between the ratio of the PaCO2 values, but not the absolute PaCO2, and the change in the plasma bicarbonate concentration over a wide range of PaCO2 values in all groups of dogs. The chemical basis for these observations will be discussed.

Acid-Base Equilibrium↗

Effect of potassium on distal nephron hydrogen ion secretion in the dog.

The purpose of these investigations was to determine whether potassium might influence the DNHS and, if so, to gain insight into the mechanisms involved. Since DNHS is decreased by ECF volume expansion, dogs were studied in both normovolemic and ECF volume-expanded states. DNHS was assessed in vivo by examining the U-B PCO2. In dogs with an expanded ECF volume, the U-B PCO2 at comparable urine bicarbonate concentrations was almost 50% lower than in the normovolemic dogs. Despite hyperkalemia and kaluresis, the U-B PCO2 was minimally affected by potassium infusion in the dogs with an expanded ECF volume. In contrast, in the normovolemic dogs, the U-B PCO2 was much higher before potassium administration and it decreased after potassium infusion to levels comparable to those observed in the dogs with ECF volume expansion. The U-B PCO2 in the normovolemic dogs was inversely related to the rate of potassium excretion when this rate was less than 150 muEq/min. Amiloride, an agent that decreases the electrical gradient favoring DNHS, caused only a small fall in the U-B PCO2 in potassium-loaded dogs with either a normal or an expanded ECF volume. Although other explanations are possible, we favor the hypothesis that the secretion of potassium into the distal nephron led to a reduced rate of hydrogen ion secretion provided that there was a significant avidity for sodium reabsorption.

Absorption↗

Evaluation of the effect of pentobarbitone anaesthesia on the plasma potassium concentration in the rabbit and the dog.

The purpose of these studies was to determine the reasons for the hypokalaemia observed in rabbits studied in our laboratory. The rabbits consumed standard rabbit chow which is rich in potassium and remained in potassium balance. Hypokalaemia was only observed following anaesthesia. A number of additional investigations were undertaken to clarify the mechanisms involved. The hypokalaemia could not be attributed to technical factors, alkalaemia, hyperinsulinaemia or hyperaldosteronism, but seemed to be a function of anaesthesia. This effect of pentobarbitone anaesthesia was not unique to the rabbit, as similar changes also occurred in the anaesthetized dog. The findings reported in this paper have significant implications with respect to the interpretation of plasma potassium concentrations in anaesthetized subjects or animals.

Acid-Base Equilibrium↗

Studies on the regulation of hydrogen ion secretion in the collecting duct in vivo: evaluation of factors that influence the urine minus blood PCO2 difference.

The purpose of these studies was to clarify the basis of the relationship between the urine bicarbonate concentration and the urine minus blood PCO2 difference in alkaline urine (U-B PCO2) and hence shed light on factors that influence hydrogen ion secretion in the collecting duct in vivo. The U-B PCO2 was used to monitor this latter parameter. In dogs with a normal extracellular fluid (ECF) volume, the U-B PCO2 was not primarily influenced by the urine bicarbonate concentration but rather it was related to the rate of sodium excretion. The U-B PCO2 could be abolished by amiloride when the urine bicarbonate concentration was less than 60 mm. At higher urine bicarbonate concentrations, there was a linear correlation between the U-B PCO2 and the urine bicarbonate concentration in normovolemic dogs given amiloride, but the absolute values were lower than they were in normovolemic animals not treated with amiloride. In the dogs with an expanded ECF volume, the U-B PCO2 was lower than it was in the normovolemic animals, and the U-B PCO2 was nor directly related to the urine bicarbonate concentration and not influenced by the rate of sodium excretion. Amiloride had little influence on the U-B PCO2 under these conditions. These results are interpreted to suggest that the magnitude of collecting duct hydrogen ion secretion is determined primarily by the electrical gradient generated by sodium reabsorption in normovolemic dogs and by the intracellular and lumenal hydrogen ion concentrations when the ECF volume is expanded or when active sodium reabsorption is inhibited by amiloride.

Absorption↗

Studies on the mechanism whereby acidemia stimulates collecting duct hydrogen ion secretion in vivo.

The purpose of these studies was to elucidate the mechanism whereby collecting duct hydrogen ion secretion was augmented by acidemia. The urine minus blood PCO2 difference in alkaline urine (U-B PCO2) was used to evaluate this parameter. In dogs with a normal ECF volume, the U-B PCO2 factored was high, and there was no significant relationship between the U-B PCO2 factored for the urine bicarbonate concentration and the blood hydrogen ion concentrations unless amiloride, an agent that abolishes the transtubular potential difference, was present. In this latter case, the U-B PCO2 was a linear function of the urine bicarbonate concentration, and the U-B PCO2 factored for the urine bicarbonate concentration was directly proportional to the blood hydrogen ion concentration. To extend the pH range considerably, we used lysine to induce bicarbonaturia in dogs with an expanded ECF volume. Amiloride now caused only a small decrease in the U-B PCO2 at any urine bicarbonate concentration, and furthermore, it did not influence the linear relationship between the U-B PCO2 factored for the urine bicarbonate concentration and the blood hydrogen ion concentration. These results suggests that acidemia stimulates collecting duct hydrogen ion secretion by a mechanism that appears to be independent of the amiloride-sensitive component of the U-B PCO2. We speculate that the mechanism might involve an increased intracellular hydrogen ion concentration during acidemia.

Amiloride↗

Comprehensive analysis of urinary metabolites of N'-nitrosonornicotine.

A detailed study of the urinary metabolites of N'-nitrosonornicotine has been performed, employing a simple high pressure liquid chromatographic method. The percentage excretion of the principal urinary metabolites was determined over a dose range of 3-300 mg/kg in the F-344 rat, as follows: 4-hydroxy-4-(3-pyridyl)butyric acid (37.1-53.3%, respectively, of the dose), N'-nitrosonornicotine-I-N-oxide (6.7-10.7%), norcotinine (3.2-5.1%), 4-oxo-4-(3-pyridyl)butyric acid (31.1-12.8%), N'-nitrosonornicotine (3.3-5.2%). In the strain A mouse and Syrian golden hamster, the urinary metabolites were qualitatively similar to those observed in the F-344 rat. The interrelationships of the various metabolites of N'-nitrosonornicotine which have been observed in vitro and in vivo were established. The in vitro metabolites resulting from 2'-hydroxylation by liver microsomes, myosmine and 4-hydroxy-I-(3-pyridyl)-1-butanone were converted, by the F-344 rat, primarily to 4-oxo-4-(3-pyridyl)butyric acid as a urinary metabolite. The in vitro metabolite resulting from 5'-hydroxylation by liver microsomes, 2-hydroxy-5-(3-pyridyl)tetrahydrofuran, gave 4-hydroxy-4-(3-pyridyl)butyric acid as its major urinary metabolite, apparently via 5-(3-pyridyl)-tetrahydrofuran-2-one. N'-nitrosonornicotine-I-N-oxide, the remaining major in vitro metabolite, was excreted to a large extent unchanged in F-344 rat urine. The urinary metabolites from 2'-hydroxylation and 5'-hydroxylation of N'-nitrosonornicotine, 4-oxo-4-(3-pyridyl)butyric acid and 4-hydroxy-4-(3-pyridyl)butyric acid, respectively, were not formed from the in vivo metabolite norcotinine and were ot interconverted significantly by the F-344 rat. Thus, these metabolites appear to be reliable indicators for the two possible in vivo alpha-hydroxylations of N'-nitrosonornicotine.

Animals↗

Implications of the finding of calcium carbonate in rabbit urine with respect to renal acidification.

Formation of calcium carbonate or carbamino compounds in a bicarbonate solution should generate hydrogen ions and thereby elevate the PCO2 of that solution. The presence of these substances in rabbit urine was established by demonstrating a significantly lower value for urine total carbon dioxide content measured by microgasometry (number of moles) than with the titration technique (number of equivalents). As there was a significant correlation between the calcium and the carbonate contents in the urine, we surmised that most of the carbonate was in the form of a suspension of calcium carbonate. Direct analysis of precipitates from rabbit bladders confirmed this impression. The formation of calcium carbonate in a solution should raise the PCO2 by the reaction: Ca2+ + 2HCO3- leads to CaCO3 + H2CO3 with subsequent dehydration of the H2CO3. In vitro studies demonstrated that the addition of 1 mmol calcium to 1 L of a 200 mM bicarbonate solution raised the PCO2 by approximately 50 mmHg (1 mmHg = 133.322 Pa). However, in vivo measurements of the PCO2 of rabbit urine containing a similar quantity of calcium carbonate revealed that there was no such rise in vivo (urine values = blood values). Therefore, the formation of calcium carbonate should have occurred at an earlier site in the nephron, thereby allowing the PCO2 to diffuse into peritubular capillaries during transit through the nephron.

Anaerobiosis↗

Metabolic beta-hydroxylation and N-oxidation of N'-nitrosonornicotine.

3'-Hydroxy-N'-nitrosonornicotine (2), 4'-hydroxy-N'-nitrosonornicotine (3), N'-nitrosonornicotine 1-N-oxide (4) were synthesized and identified as metabolites in the F-344 rat of the tobacco-specific carcinogen N'-nitrosonornicotine (1). For the synthesis of 2, myosmine (5) was converted to 3'-bromomyosmine (6). Displacement by acetate and hydrolysis gave 3'-hydroxymyosmine (7), which was reduced and nitrosated to give 2. 4'-Hydroxymyosmine (13), the precursor to 3, was prepared by ammonolysis of 1,2-epoxy-4-(N-morpholino)-4-(3-pyridyl)-4-cyanobutane (10). N'-Nitrosonornicotine 1-N-oxide (4) was prepared by m-chloroperbenzoic acid oxidation of 1. When 1 was incubated with liver microsomes from Aroclor-pretreated F-344 rats, trace amounts of 2 and 3 were produced and 4 was a major metabolite. The urine from rats treated with N'-nitrosonornicotine-2'-14C contained only trace amounts of 2 and 3, whereas 4 accounted for 6.7-9.4% of the dose.

Animals↗

Assays for metabolic alpha-hydroxylation of N'-nitrosonornicotine and N-nitrosopyrrolidine and the influence of modifying factors.

High-pressure liquid chromatographic methods were developed to study microsomal alpha-hydroxylation, which is likely to be an activation mechanism for N-nitrosopyrrolidine (NPYR) and N'-nitrosonornicotine (NNN). The effects of ethanol, phenobarbital and 3-methylcholanthrene pretreatment on the alpha-hydroxylation of NPYR and NNN were determined using F-344 rats and Syrian golden hamsters. In the rat, 3-methylcholanthrene pretreatment decreased the rates of alpha-hydroxylation of NPYR and 5'-hydroxylation of NNN, but increased the rate of 2'-hydroxylation of NNN. Phenobarbital pretreatment of rats did not markedly affect rates of alpha-hydroxylation of NPYR or NNN. In the hamster, 3-methylcholanthrene pretreatment increased the rate of alpha-hydroxylation of NPYR, but did not affect the rates of alpha-hydroxylation of NNN. Phenobarbital or ethanol pretreatment of hamsters resulted in increased rates of alpha-hydroxylation of NPYR and 5'-hydroxylation of NNN. The induction of alpha-hydroxylation of NNN and NPYR by ethanol suggests that these nitrosamines may be more carcinogenic in alcohol-treated animals.

Animals↗

Metabolism of the tobacco specific nitrosamines, N'-nitrosonornicotine and 4-(N-methyl-N-nitrosamino)-1-(3-pyridyl)-1-butanone.

The metabolism, in the F-344 rat, of the tobacco-specific carcinogens, N'-nitrosonornicotine (NNN) and 4-(N-methyl-N-nitrosamino)-1-(3-pyridyl)-1-butanone (NNK) was studied. NNN was hydroxylated at each position of the pyrrolidine ring; 2'-hydroxylation gave 4-hydroxy-1-(3-pyridyl)-1-butanone in vitro and the corresponding acid in vivo, 3'-hydroxylation gave 3'-hydroxyNNN, 4'-hydroxylation gave 4'-hydroxy-NNN and 5'-hydroxylation gave 4-hydroxy-4-(3-pyridyl)butanal (in vitro) and 4-hydroxy-4-(3-pyridyl) butanoic acid (in vivo). The principle ring hydroxylation in the untreated F-344 rat was 5'-hydroxylation. Pyridine N-oxidation was also observed, giving NNN-1-N-oxide as a major metabolite. The principle urinary metabolites of NNN were formed by 5'-hydroxylation and pyridine-N-oxidation. For NNK, a major process was reduction of the carbonyl to give 4-(N-methyl-N-nitrosamino)-1-(3-pyridyl)-1-butanol. alpha-Hydroxylation of both the N-methyl and N-methylene groups was also observed, as was formation of NNK-N-oxide in vitro and in vivo.

Animals↗

Comparative carcinogenicity in F344 rats of the tobacco-specific nitrosamines, N'-nitrosonornicotine and 4-(N-methyl-N-nitrosamino)-1-(3-pyridyl)-1-butanone.

The tobacco-specific carcinogens, N'-nitrosonornicotine (NNN) and 4-(N-methyl-N-nitrosamino)-1-(3-pyridyl)-1-butanone (NNK), were tested for carcinogenicity in F344 rats. Each nitrosamine in trioctanoin was administered by s.c. injection to 12 male and 12 female rats over a period of 20 weeks. The total dose of each nitrosamine was 3.4 mmol. The experiment was terminated after 12 months. NNK induced nasal cavity tumors in 83% of the males and in 83% of the females, liver tumors in 83% of the males and in 100% of the females, and lung tumors in 67% of the males and in 67% of the females. NNN induced nasal cavity tumors in 92% of the males and in 75% of the females. Only one liver tumor and no lung tumors were observed in the NNN-treated rats. These results indicate that, in the F344 rat, NNK is a more powerful carcinogen than is NNN.

Animals↗