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Biomedical subjects

L R Pucacco

Publications and source records attributed to L R Pucacco.

17 recordsLinked to original sources

Microelectrode of the Thomas type using a liquid membrane electrode.

By replacing the glass-based pH electrode (L. R. Pucacco, S. K. Corona, H. R. Jacobson, and N. W. Carter (1986) Anal. Biochem. 153, 251-261) with a liquid membrane-based pH electrode, a relatively easy-to-manufacture modified Thomas electrode has been developed. The liquid membrane-based modified Thomas electrode can be manufactured without the special equipment (forge) and materials (glass) required to make the glass membrane pH microelectrode (L. R. Pucacco and N. W. Carter (1976) Anal. Biochem. 73, 501-512). The sensitivity (57.4 +/- 0.22 mV/pH unit), response time (20.0 +/- 2.67 s), and electrical resistance (3.48 +/- 0.67 X 10(11) ohm) of this electrode are similar to those of the glass-based version.

Electronics, Medical

Sodium-sensitive glass microelectrode: modified Thomas recessed-tip configuration.

Using a glass-membrane, sodium-sensitive microelectrode, a modified Thomas sodium-sensitive electrode has been developed. The modified Thomas electrode possesses a high sensitivity (57.9 mV/log aNa), a high selectivity (KpotNa,K less than 0.005), a relatively low electrical resistance (7.65 X 10(11) ohms), a small sensing chamber (10 microns3), and can be made in the double-barreled configuration. The modified Thomas electrode is designed to directly measure the intracellular sodium concentration of epithelial cells.

Glass

pH microelectrode: modified Thomas recessed-tip configuration.

Through the use of a glass-membrane pH electrode and a water-tight seal a modified Thomas pH microelectrode has been developed. The modified Thomas electrode has a relatively low electrical resistance (10(11) omega), a small sensing chamber (10 microns3), and a rapid response time (10 s) and can be manufactured in both single- and double-barreled configurations. The modified Thomas electrode is designed to measure the intracellular pH of small cells such as those found in the mammalian kidney tubule.

Animals

Hydrogen ion permeability of the rabbit proximal convoluted tubule.

Acidification of luminal fluid in the proximal convoluted tubule has been modeled as a pump-leak system. Using isolated perfused rabbit proximal convoluted tubules in a HCO-3/CO2-free in vitro environment, we studied "H+ leak" by imposing pH gradients across the tubule and measuring the change in pH from perfusate to collected fluid. Active acidification was inhibited by acetazolamide with and without hypothermia. At 21 degrees C a symmetrical H+ leak with an apparent permeability coefficient of approximately 0.15 cm X s-1 was found with either a lumen-to-bath or bath-to-lumen [H+] gradient. At 37 degrees C a much higher apparent permeability coefficient was found that was dependent on luminal lactate. Phosphate movement did not affect H+ fluxes significantly. Without luminal lactate, the apparent permeability coefficient was 0.31 cm X s-1. Although this permeability coefficient is larger than other ionic permeability coefficients in this segment, it is not sufficient to account for a significant H+ leak compared with rates of acidification or bicarbonate reabsorption. To investigate the role of Na+-H+ exchange in mediating the observed H+ leak, we perfused tubules with low [Na+] solutions with and without amiloride (10(-3) M). Neither the lower [Na+] nor the presence of amiloride diminished the apparent [H+] permeability coefficient. We conclude that a H+ leak pathway independent of Na+-H+ exchange is present in the proximal convoluted tubule.

Animals

In situ PCO2 in the renal cortex, liver, muscle, and brain of the New Zealand white rabbit.

Recent studies have shown that in situ PCO2 in rat renal cortical structures far exceeds systemic arterial PCO2. These results were opposite to previous assumptions that renal proximal tubule fluid PCO2 approximated arterial PCO2. The present studies examined the species and organ specificity of the elevated PCO2 in 39 New Zealand White rabbits studied under normal acid-base conditions. In situ PCO2 was measured in renal cortex, superficial hepatic parenchyma, skeletal muscle, superficial cerebral cortex, and femoral nerve, artery, and vein. The results showed rabbit renal cortical PCO2 (57.2 +/- 1.2 mmHg) to be higher than both systemic arterial (39.1 +/- 2.0 mmHg) and venous PCO2 (45.4 +/- 2.1 mmHg). Similarly, liver PCO2 (64.1 +/- 3.5 mmHg) was found to be significantly higher than systemic arterial and venous PCO2 and also higher than portal and hepatic vein PCO2. Skeletal muscle, cerebral cortex, and femoral nerve PCO2 levels were usually greater than systemic arterial PCO2 but less than systemic venous PCO2. These observations show that in situ PCO2 is significantly elevated above afferent and efferent blood PCO2 in the kidney and liver but not in muscle or brain. A possible explanation for these findings in the former two organs may be high CO2 production and/or trapping of CO2 by their vascular systems.

Animals

Comparison of acidification parameters in superficial and deep nephrons of the rat.

The purpose of this study was to determine and compare pH, PCO2, and fractional bicarbonate delivery in both superficial and juxtamedullary nephrons by microelectrode techniques and microcalorimetry in the rat in vivo in order to define more clearly the role of deeper nephron segments in urinary acidification. Values for pH and total CO2 concentration ([tCO2]) at the bend of Henle's loop (LOH) (7.39 +/- 0.04 units and 20.5 +/- 1.5 mM) were significantly greater and the PCO2 was significantly less (36.6 +/- 1.5 mmHg) than values for these same parameters in the superficial late proximal tubule (LPT) (6.78 +/- 0.03 units, 8.1 +/- 1.2 mM, and 63.2 +/- 1.0 mmHg, P less than 0.001). The fraction of filtered bicarbonate delivered to the LPT and LOH did not differ, however (12.2 +/- 2.5 vs. 9.0 +/- 0.8%). The pH and PCO2 values in the late distal tubule (6.59 +/- 0.04 units and 64.0 +/- 1.3 mmHg) were significantly greater than at the base (6.24 +/- 0.07 units and 34.5 +/- 1.5 mmHg) and tip (6.12 +/- 0.03 units and 35.2 +/- 1.2 mmHg) of the papillary collecting duct. The [tCO2] in the LOH and an adjacent vasa recta was compared and did not differ significantly (20.5 +/- 1.5 vs. 21.2 +/- 1.3 mM, P greater than 0.05). In summary, we have demonstrated significant alkalinization of tubule fluid in the deep LOH as a result of water abstraction and CO2 diffusion from the nephron. Our results suggest that a spontaneous disequilibrium pH may not exist in the LOH. Furthermore, similar values for [tCO2] in vasa recta and the LOH suggest that passive HCO-3 reabsorption in the thin ascending limb of Henle would be unlikely and does not contribute to the "loop" component of bicarbonate reabsorption.

Acid-Base Equilibrium

Direct evaluation of the permeability of the rat proximal convoluted tubule to CO2.

Conflicting data exist regarding the ability of the rat proximal convoluted tubule to maintain a transepithelial gradient for CO2 and the effects of carbonic anhydrase on CO2 permeability. The present in vivo microperfusion experiments were designed to assess the ability of the rat proximal tubule to sustain a CO2 gradient between tubule lumen and peritubular blood. Tubules were perfused at rates ranging from 10 to 100 nl/min with isotonic sodium chloride containing no CO2. Peritubular capillary and intraluminal PCO2 was measured during microperfusion with PCO2 microelectrodes to allow determination of the transepithelial CO2 gradient. The mean PCO2 measured in peritubular capillaries of control rats was 60.6 +/- 1.9 mmHg. Since the perfusion solution initially contained no CO2, a gradient of 60 mmHg was imposed across the tubule epithelium. Intraluminal PCO2 rapidly approached that of the surrounding capillaries. At a tubule perfusion rate of 20 nl/min, the gradient between lumen and blood decreased to 0.9 mmHg, a value not significantly greater than zero. The calculated CO2 permeability coefficient (KCO2) was 3.69 X 10(-5) cm2/s. Addition of either 10(-4) M acetazolamide or benzolamide did not prolong the rapid dissipation of the imposed CO2 gradient. The KCO2 during carbonic anhydrase inhibition was not significantly different from control values. It is concluded that the rat proximal tubule does not present a physiologically significant diffusion barrier to CO2 either in the presence or absence of carbonic anhydrase activity. The previously demonstrated acid disequilibrium pH in the proximal tubule during inhibition of carbonic anhydrase represents an intraluminal accumulation of carbonic acid rather than of carbon dioxide gas.

Animals

Evaluation of bicarbonate transport in rat distal tubule: effects of acid-base status.

Previous micropuncture studies utilizing indirect methods to estimate bicarbonate transport in the rat superficial distal tubule have indicated that the distal bicarbonate reabsorptive process normally operates well below the saturation level. Recent studies from our laboratory failed to demonstrate a spontaneous acid disequilibrium pH in this segment, implying that the bicarbonate reabsorptive rate was less than previously estimated. The purpose of the present experiments were 1) to measure the rate of absolute bicarbonate reabsorption by the rat superficial distal tubule while controlling bicarbonate delivery, and 2) to examine the effects of alterations in acid-base status on the rate of bicarbonate reabsorption. Five groups of rats in different states of acid-base balance were studied. No significant bicarbonate reabsorption was detected in the control hydropenic, combined respiratory acidosis-metabolic alkalosis, acute respiratory acidosis, or acute metabolic acidosis groups. In contrast, metabolic acidosis of 3 days duration resulted in a significant bicarbonate reabsorptive rate of 52.6 +/- 13.9 pmol . mm-1 . min-1. The observation of significant bicarbonate reabsorption in the distal tubule only during chronic metabolic acidosis of 3 days duration is compatible with adaptation of this normally low-capacity segment to chronic changes in systemic acid-base states.

Acid-Base Equilibrium

Determination of disequilibrium pH in the rat kidney in vivo: evidence of hydrogen secretion.

The recent demonstration of elevated PCO2 in structures of the rat renal cortex indicated that previous determinations of disequilibrium pH (pHDq), and thus the differentiation of H+ secretion from bicarbonate reabsorption per se, required further evaluation. A new aspiration pH electrode was developed to allow tubule fluid to achieve chemical equilibrium at the PCO2 prevailing in vivo. In control and bicarbonate-loaded rats a pHDq was not observed in either proximal or distal tubules. After intravenous benzolamide a significant acid pHDq was observed in the proximal (but not the distal) nephron, and increased further during metabolic alkalosis. During combined metabolic alkalosis and respiratory acidosis a significant pHDq was present in the distal but not in the proximal tubule. Aldosterone administration to bicarbonate-loaded, hypercapnic rats did not alter the distal pHDq further. When present, the pHDq in the distal tubule was obliterated by carbonic anhydrase infusion. We conclude that proximal but not distal tubule fluid is in functional contact with carbonic anhydrase; the enzyme is in excess in the proximal lumen and H2CO3 did not accumulate even during conditions associated with increased H+ secretion; the basal rate of H+ secretion in the distal nephron accessible to cortical micropuncture is less than previously assumed. The data support the view that H+ secretion is the major mechanism of renal bicarbonate reabsorption.

Acid-Base Equilibrium

Microelectrode determination of pH and PCO2 in rat proximal tubule after benzolamide: evidence for hydrogen ion secretion.

Previous micropuncture studies supporting hydrogen secretion as the mechanism of bicarbonate reabsorption have relied on the demonstration of an acid disequilibrium pH in the proximal tubule after systemic administration of a carbonic anhydrase inhibitor. Previous calculations of disequilibrium pH, however, have involved the necessary assumption that PCO2 in the proximal convoluted tubule was equal to arterial blood PCO2. This assumption can no longer be supported in view of the recent demonstration that the PCO2 in proximal and distal tubular fluid exceeded arterial blood by approximately 25 mm Hg. The purpose of the present study was to determine directly pH and PCO2 with microelectrodes in both the early and late segments of the accessible proximal tubule of nine Sprague-Dawley rats before and after administration of benzolamide (2.0 mg/kg/hr, i.v.). In the early proximal tubule, pH decreased significantly after benzolamide administration from 6.98 +/- 0.03 to 6.62 +/- 0.03 pH U (P less than 0.001), and PCO2 also decreased from 65.1 +/- 1.2 to 59.3 +/- 1.4 mm Hg (P less than 0.005). In the late proximal convoluted tubule, pH did not change after benzolamide (6.75 +/- 0.02 to 6.77 +/- 0.02), but PCO2 decreased significantly (64.3 +/- 1.5 to 57.7 +/- 1.6) (P less than 0.01). We conclude: (1) the fall in both pH and PCO2 in the early proximal tubule indicates that carbonic acid, not carbon dioxide accumulates after inhibition of luminal carbonic anhydrase; (2) although PCO2 also decreased in the late proximal tubule, unlike the early segment, pH was unchanged after benzolamide administration, perhaps as a result of increased bicarbonate delivery; and (3) PCO2 in vivo was significantly greater than was systemic arterial PCO2 before and after benzolamide administration in both the early and late proximal convoluted tubule. These findings lend support to the view that bicarbonate reabsorption in the proximal convoluted tubule occurs, in part, by hydrogen secretion.

Animals

Micropuncture determination of pH, PCO2, and total CO2 concentration in accessible structures of the rat renal cortex.

Previous studies evaluating the mechanism of renal HCO-3 reabsorption have assumed equilibrium between systemic arterial blood and tubular fluid PCO2. We have recently reported that the PCO2 in proximal and distal tubular fluid as well as the stellate vessel significantly exceeded arterial PCO2 by 25.9 +/- 0.92 mm Hg. The purpose of this study was to determine directly, for the first time, pH, PCO1, and total CO2 concentration in the accessible structures of the rat renal cortex with both microelectrodes and microcalorimetry. In addition, the concentrations of chloride and total CO2 were compared in the stellate vessel. The data demonstrate that: (a) values for total [CO2] in both the proximal tubule and stellate vessel calculated from in situ determination of pH and PCO2 closely agree with the measured values for total [CO2]: (b) values for chloride concentration in the stellate vessel are significantly less than the corresponding values in systemic plasma (delta[Cl-] = 5.6 meq/liter); and (c) the rise in [HCO-3] from systemic to stellate vessel plasma closely approximates the observed reciprocal fall in [Cl-] in this structure.

Animals

Manufacture and utilization of antimony pH electrodes.

A new technique for manufacturing single-barreled and double-barreled antimony pH microelectrodes is described. The results of investigations into the accuracy of antimony as a pH sensor disclosed that the pH-voltage response is: 1) within the physiologic range, principally the result of the hydrogen ion activity of the solution in which the voltage is being developed, 2) in part, qualitatively anion-dependent, 3) modified by the presence of significant amounts of at least carbon dioxide, oxygen, and nitrogen gases, and 4) markedly offset by fluctuations in temperature. Our results further indicate that the accuracy of antimony as a pH sensor is determined by the quality of the calibration procedure. We conclude that if the antimony electrode is to accurately determine the pH of a biological fluid, the pH calibration solutions must closely resemble the unknown biological fluid with respect to temperature, PO2, PN2, and types of buffering anions. A calibration procedure is described which can minimize errors with antimony pH estimations when measuring the pH of proximal tubular fluid of the mammalian kidney.

Animals

Direct determination of PCO2 in the rat renal cortex.

The mechanism by which the kidney reabsorbs sodium bicarbonate could be a result of (a) H+ secretion, (b) direct HCO3- reabsorption, or (c) a combination of both processes. Most of the studies which have supported the H+ secretory theory have involved the assumption that tubular fluid and arterial PCO2 were equal. We have utilized a new PCO2 microelectrode to directly determine in situ PCO2 of tubular fluid and stellate vessel blood in the cortex of the rat kidney during control conditions and after alterations in acid-base status. In 21 control rats, proximal tubular fluid PCO2 exceeded systemic arterial PCO2 (deltaCO2) by 25.9 +/- 0.92 mm Hg (P less than 0.001). The values obtained for both distal tubular fluid and stellate vessel blood were not significantly different from proximal tubular PCO2. Evaluation of PCO2 in the proximal tubules of Munich-Wistar rats did not reveal evidence for a declining profile for PCO2 along the length of the nephron. When proximal bicarbonate reabsorption was increased or decreased acutely by alterations in acid-base status, deltaPCO2 changed in paralle. Furthermore, benzolamide administration significantly reduced deltaPCO2. We conclude: (a) that the PCO2 in tubular fluid is significantly greater than systemic arterial PCO2, (b) that there is no tendency for the observed PCO2 to fall along the proximal tubule, (c) the mean PCO2 in the proximal and distal tubules as well as the stellate vessle is not significantly different, thereby rendering the concept of a "diffusion barrier" for CO2 in the proximal tubule unlikely, and (d) the level of renal cortical PCO2 appears to vary directly with the magnitude of bicarbonate reabsorption.

Absorption