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Biomedical subjects

R G Luke

Publications and source records attributed to R G Luke.

At least 37 records · Page 2Linked to original sources

HCO3- transport in rat CCD: rapid adaptation by in vivo but not in vitro alkalosis.

Acute chloride-depletion alkalosis (CDA) in vivo results in sustained net total carbon dioxide (tCO2) secretion in vitro in the rat cortical collecting duct (CCD) for several hours. To determine whether altering in vitro pH and electrolytes similarly result in tCO2 secretion, CCD were incubated for 1 h at 37 degrees C in an alkalotic environment similar to in vivo arterial pH, PCO2, and electrolytes (pH 7.6, 40 mM HCO3). The in vitro alkalosis incubation had no effect on tCO2 transport. Second, alteration of the magnitude of vivo alkalosis was correlated with in vitro tCO2 transport. After generation of CDA by intraperitoneal dialysis against 154 mM HCO3-, rats received an infusion for 2.5 h of either 5% dextrose to maintain alkalosis or 154 mM NaCl at differing rates to partially correct or fully correct the systemic alkalosis. After in vitro isolation and perfusion, in vitro tCO2 flux correlated with in vivo Cl- balance (r2 = 0.82), serum HCO3- (r2 = 0.84), and arterial H+ concentration (r2 = 0.78), but not with K+ balance (r2 = 0.33). These findings suggest that: 1) the regulation of tCO2 transport in vitro correlates with the degree of systemic alkalosis and Cl- balance in vivo, and 2) simulating alkalotic pH and electrolytes in vitro does not rapidly alter transport as does in vivo CDA within a similar time. Taken together, pH and electrolyte changes alone cannot account for the rapid adaptation of tCO2 transport in the CCD, but an in vivo factor(s) contributes importantly to alter tCO2 transport in magnitude and direction that would tend to restore normal acid-base balance.

Animals↗

Response of intercalated cells to chloride depletion metabolic alkalosis.

We examined the effect of Cl- depletion metabolic alkalosis (CDA) on H(+)-ATPase and band 3 protein localization in intercalated cells (IC) of the rat cortical collecting duct (CCD) and the outer medullary collecting duct (OMCD). After 30 min of peritoneal dialysis against 0.15 M NaHCO3 to produce CDA, or Ringer bicarbonate to serve as controls (CON), both groups were infused intravenously with an 80 mM Cl- solution for 90 min. For CDA vs. CON, physiological parameters were as follows: plasma total CO2, 38.0 +/- 1.1 vs. 27.8 +/- 0.6 meq/l (P less than 0.001); urinary total CO2 excretion, 141 +/- 89 vs. 20 +/- 3 neq.min-1.100 g body wt-1; and urinary Cl- excretion, 20 +/- 10 vs. 486 +/- 144 neq.min-1.100 g body wt-1 (P less than 0.001). H(+)-ATPase was localized in thin sections using a rabbit polyclonal antibody against the 70-kDa subunit of bovine brain H(+)-ATPase. Band 3 protein was localized using a polyclonal antibody against the 43-kDa subunit of the cytoplasmic domain of human erythrocyte band 3 protein. In CON rats, H(+)-ATPase localized along the apical plasma membrane and over the apical cytoplasmic vesicles of type A ICs in the CCD and ICs of the OMCD. H(+)-ATPase was observed along the basolateral plasma membrane and over cytoplasmic vesicles throughout type B ICs. In CDA rats, H(+)-ATPase was only observed over apical cytoplasmic vesicles in type A ICs and in the majority of OMCD ICs. In type B ICs, H(+)-ATPase staining was intensified along the basal plasma membrane in CDA. Band 3 protein was consistently localized in the basolateral plasma membrane of all type A cells in the CCD and ICs of the OMCD in both CON and CDA. In summary, stimulation of HCO3- secretion in rats caused withdrawal of H(+)-ATPase from the apical plasma membrane and storage in apical cytoplasmic vesicles of ICs of the OMCD and type A ICs of the CCD. H(+)-ATPase appeared to be inserted into the basal plasma membrane of type B ICs. These findings suggest that, during correction of CDA, proton secretion by type A and OMCD ICs is suppressed and proton transport across the basolateral plasma membrane of type B ICs is stimulated.

Adenosine Triphosphatases↗

Changing patterns of end-stage renal disease due to hypertension.

We analyzed the records of all residents of Jefferson County, Alabama, accepted for renal replacement therapy between 1982 and 1987 and compared them with those accepted between 1974 and 1978 to determine any changes in the distribution and frequency of end-stage renal disease (ESRD) due to hypertension (H-ESRD). H-ESRD increased from 6.4 to 9.6 per 100,000 in blacks and from 0.36 to 0.62 per 100,000 in whites. Smoothed age- and race-specific yearly H-ESRD rates decreased in blacks under age 50. Peak incidence of H-ESRD shifted from age 40 to 49 in 1974 through 1978 to age 50 to 59 in 1982 through 1987 (P less than 0.0001). Blacks were referred for care with significantly higher blood pressure levels and serum creatinine concentrations than whites, and had more severe retinal vascular disease. Factors significantly associated with a shorter time from referral to renal replacement therapy were black race, female gender, blood urea nitrogen and serum creatinine concentrations, carbohydrate intolerance, and the use of alpha-agonist and/or angiotensin-converting enzyme (ACE) inhibitor. We conclude that racial distribution and risk for H-ESRD have not changed. Peak rates of H-ESRD have been delayed nearly a decade, suggesting a possible effect of better awareness and treatment of hypertension.

Adult↗

Mechanism of cyclosporine-induced hypertension.

Cyclosporine is a common immunosuppressive agent used in solid organ and bone marrow transplants and the treatment of some immunological diseases. It has been established that treatment with cyclosporine can cause a patient to develop hypertension within a few weeks of treatment. This review will examine this effect and effective ways to treat it.

Animals↗

Internal medicine residents' monitoring of their colleagues' moonlighting activities at the University of Cincinnati.

The University of Cincinnati Department of Internal Medicine instituted in 1989-90 a peer review moonlighting committee of residents to (1) design departmental guidelines for work activities and number of work hours, (2) confidentially document work activities of fellow residents, (3) identify discrepancies between the recommended guidelines and residents' work activities, and (4) initiate control policies. Quarterly self-report questionnaires documenting moonlighting activities were given to each of the 35 residents in the second and third postgraduate years (20 and 15 residents, respectively). There was a 98% compliance rate by the residents through the initial 12 consecutive months. The completed questionnaires indicated that there were four first-time violators of established guidelines. The authors suggest that a peer review moonlighting committee may help in establishing mutually acceptable work activity guidelines while maintaining the accountability of the residency review committee and the program director.

Employment↗

Adaptations to chloride-depletion alkalosis.

The systemic and renal adaptations for the maintenance and correction of metabolic alkalosis generated by chloride depletion (CDA) are the focus of this review. The hypothesis that extracellular fluid (ECF) volume expansion is essential for the correction of CDA is refuted, while the concept that Cl- repletion is necessary and sufficient for correction is developed. Contraction of ECF volume probably can occur as a consequence of CDA. The principal mechanisms by which the kidney corrects CDA appear to reside primarily in the collecting duct, which is endowed with the anion exchange mechanisms and the capacity to effect the necessary changes in body anion composition. Although the remainder of the collecting duct is undoubtedly important in this response, the cortical segment appears to have the paramount role since it can either absorb or secrete HCO3-. Alterations in the delivery of Cl- or HCO3- to the collecting duct may also be important but changes in glomerular filtration rate appear to have a minor role. Major unanswered questions in the pathophysiology of CDA are the manner in which exogenous Cl- repletion is detected and the kidney is signaled to excrete HCO3- and the cellular mechanisms by which this is accomplished in the various nephron segments.

Adaptation, Physiological↗

Absence of a regulatory role of angiotensin II in acute chloride-depletion alkalosis in rats.

Chloride-depletion alkalosis (CDA) has been characterized by hypereninemia. To determine whether angiotensin II (ANG II) has an important role in its maintenance or correction, anesthetized alkalotic rats, chloride depleted by peritoneal dialysis, were infused with 5% dextrose and saralasin (1 microgram.kg-1.min-1) (SAR) or vehicle (SAR-C), 5% dextrose and pretreatment with enalapril (1-1.5 mg/kg) (ENP) or vehicle (ENP-C), or 80 mM Cl solution with ANG II (20 micrograms/min) (ANG) or vehicle (ANG-C). Rats infused with 5% dextrose showed no differences in the magnitude of the alkalosis, inulin clearance, or urinary total CO2 excretion; both SAR and ENP were associated with decreased blood pressure. In SAR, tCO2 delivery out of late proximal convoluted tubule did not differ from that in SAR-C. Rats infused with 80 mM Cl corrected CDA similarly (delta plasma [Cl] - ANG-C + 6 +/- 1, ANG + 5 +/- 1 mM; P = not significant). These data suggest that, although ANG II can importantly influence vascular tone and early proximal tubule bicarbonate reabsorption, it does not have an important role in the renal maintenance or correction of acute CDA.

Alkalosis↗

Pathophysiology and treatment of posttransplant hypertension.

Post-renal transplant hypertension remains a common problem. The most frequent causes now are chronic rejection and cyclosporine-induced hypertension. Before the development of cyclosporine, renin-dependent hypertension was the dominant pathophysiological mechanism but now, with the widespread use of cyclosporine, a salt-dependent mechanism is the major one. In severe "inappropriate" hypertension, potentially surgically remediable causes such as renal artery stenosis of the allograft artery or renin release from the native kidneys should be considered. Cyclosporine causes hypertension in normal subjects and in all solid organ transplants. The most likely mechanism is renal vasoconstriction with subtle retention of sodium chloride together with systemic vasoconstriction. The vasoconstriction, as yet, is not associated with any specific vasoconstricting agent nor does there appear to be a specific antagonist. Indeed, increased sensitivity to many different vasoconstrictors has been demonstrated. The major site of vasoconstriction appears to be in the afferent arteriole, and optimum antihypertensive therapy is probably provided by calcium channel blockers if the hypertension is due to cyclosporine. Because post-renal transplant hypertension is often multifactorial in origin, however, it is not surprising that the use of combined antihypertensives is often necessary.

Antihypertensive Agents↗

Cyclosporine-induced changes in glomerular filtration rate and urea excretion.

PURPOSE: Cyclosporine is the mainstay of many immunosuppressant protocols, but confers a significant risk of nephrotoxicity. We sought to clarify the effects of cyclosporine on renal function in renal transplant recipients after induction of mild intravascular volume depletion. PATIENTS AND METHODS: Two groups of renal transplant patients with normal allograft function at least 6 months after transplantation whose immunosuppressive regimens differed only by the presence or absence of cyclosporine usage were enrolled in a 10-day in-hospital protocol. After a 3-day control period, intravascular volume depletion was produced by dietary restriction of sodium chloride for 4 days and the administration of furosemide. Creatinine and urea clearances, true glomerular filtration rate (GFR) (by radioisotope technique), and the fractional excretion of sodium were measured. The patients were subsequently given a high amount of sodium chloride by intravenous infusion (3.8 mEq/kg body weight/day) for 3 days and the studies were repeated. RESULTS: Ten patients treated with azathioprine and prednisone (azathioprine-treated) and nine patients treated with cyclosporine, azathioprine, and prednisone (cyclosporine-treated) were enrolled. The two groups developed a similar degree of intravascular volume depletion; blood pressure did not change and urine flow rates did not differ between the groups throughout the protocol. The cyclosporine-treated patients showed significant decreases in GFR, creatinine clearance, and urea clearance, and increases in blood urea nitrogen (BUN) and percent urea reabsorption after intravascular volume depletion; these findings resolved after challenge with the sodium chloride load. In contrast, the azathioprine-treated patients' BUN, urea clearance, GFR, and creatinine clearance did not significantly change throughout the protocol. The decrease in the fractional excretion of sodium after intravascular volume depletion was significantly greater in the cyclosporine-treated patients. CONCLUSION: Cyclosporine predisposes to acute reversible nephrotoxicity by compromising the renal compensatory mechanisms. Proximal tubular function, as manifested by urea and sodium reabsorption, remains intact.

Adult↗

Total CO2 transport in rat cortical collecting duct in chloride-depletion alkalosis.

Previous studies in chloride-depletion metabolic alkalosis (CDA) generated by intraperitoneal dialysis have suggested major alterations in chloride and bicarbonate transport beyond the distal convoluted tubule. To investigate the possible role of the cortical collecting duct (CCD) in the pathophysiology of CDA, isolated CCD segments were perfused in vitro from either control (CON) rats dialyzed against Ringer-bicarbonate or those made alkalotic by peritoneal dialysis with 0.15 M NaHCO3. Tubules from CDA animals secreted CO2 for greater than or equal to 3 h after dissection (-22.4 +/- 7.2 pmol.mm-1.min-1) compared with CON tubules that absorbed CO2 (18.3 +/- 4.2 pmol.mm-1.min-1). Replacement of luminal chloride with gluconate in the perfusate abolished net total CO2 (tCO2) secretion in tubules from CDA animals (from -21.5 +/- 4.5 to -2.7 +/- 2.3 pmol.mm-1.min-1) but did not alter net tCO2 absorption in tubules from CON animals. In contrast, removal of bath chloride increased net tCO2 secretion (-12.1 +/- 2.9 to -26.1 +/- 3.6 pmol.mm-1.min-1) in CDA tubules, whereas net tCO2 flux was altered from absorption to secretion in CON tubules (15.5 +/- 4.0 to -13.6 +/- 9.2 pmol.mm-1.min-1). These results demonstrate that 1) CDA generated in vivo within 45 min results in stable net tCO2 secretion in vitro up to 240 min in the CCD; 2) luminal chloride is necessary for tCO2 secretion; 3) the shift of net tCO2 flux from absorption to secretion in CON tubules in vitro was not sustained in contrast to CDA tubules.(ABSTRACT TRUNCATED AT 250 WORDS)

Alkalosis↗

Ion concentrations in the rat CCD: differences between cell types and effect of alkalosis.

We have previously shown that the isolated perfused cortical collecting duct (CCD) from chloride-depleted alkalotic (CDA) rats continues to secrete HCO3 for up to 3 h. To determine whether the sustained alteration in transport was associated with changes in intracellular ion concentrations, we performed energy-dispersive X-ray microanalysis in microdissected tubule bundles obtained from CDA rats and rats with normal acid-base status (CON). Before analysis, the bundles from both groups were incubated for 1 h in vitro in a modified Ringer solution (pH 7.4, 105 mM Cl). Principal (PC) and intercalated cells (IC) of the CCD from CON animals differed in the nuclear concentration of Na (17.0 vs. 24.7 mmol/l cell water), K (192.5 vs. 177.0 mmol/l cell water), and Cl (17.8 vs. 47.8 mmol/l cell water). Cells of the cortical thick ascending limb of Henle (CTAL) had the lowest Na and Cl values (11.5 and 14.8 mmol/l cell water, respectively). CDA resulted in no systematic Cl changes. In the IC the nuclear Na concentration was significantly increased (32.0 vs. 24.7 mmol/l cell water) and in all cells a small reduction in K concentration was detectable. These findings suggest that 1) the different transport functions of IC, PC, and CTAL are associated with differences in the intracellular ion composition, and 2) the sustained HCO3 secretion seen in CCD from CDA rats cannot be explained as the result of intracellular Cl depletion.

Alkalosis↗