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Biomedical subjects

E Chakrabarti

Publications and source records attributed to E Chakrabarti.

10 recordsLinked to original sources

Impact of diazepam on pineal-adrenal axis in an avian model.

Diazepam, a benzodiazepine derivative, better known as a melatonin blocker in mammals, was injected into pigeons at a dose of 3 mg/kg body weight/day for 1 h, 1 day, 7 days and 15 days. This was done to investigate whether diazepam-induced changes in the pineal gland were reflected in the functioning of the adrenal gland. The results indicated that diazepam caused inhibition of pineal function and the degree of inhibition was very much time dependent. In addition, the pineal gland was unable to modulate the adrenomedullary hormonal titre yet it considerably influenced the physiology of the adrenal cortex.

Adrenal Glands↗

Development of a simple enzyme immunoassay for blood haptoglobin concentration in cattle and its application in improving food safety.

OBJECTIVE: To verify the role of haptoglobin, a major acute-phase reactant protein in cattle, as a marker to identify health/disease status in cattle and further assess its potential in improving food safety. SAMPLE POPULATION: Serum samples from various cattle groups: clinically normal cattle comprising steers (n = 157) and culled dairy cows (n = 92) before death (antemortem [AM]); retained carcasses (n = 57) railed off the line during postmortem (PM) inspection; and apparently AM normal culled dairy cows (n = 57). PROCEDURE: Efficacy of the simplified monoclonal antibody-based enzyme immunoassay was established by comparing results of haptoglobin tests performed independently on aliquots of serum samples by 3 laboratories. RESULTS: Haptoglobin concentration was significantly (P< or = 0.0001) different between the PM retained carcass group (n = 57) and the AM steer (n = 157) and culled dairy cow (n = 92) groups. In addition, haptoglobin concentration in AM steers (n = 157) and culled dairy cows (n = 92) was significantly (P < or = 0.0012) different, possibly reflecting a higher percentage of underlying pathologic or inflammatory conditions in animals of the latter group. Evaluation in 3 laboratories of sera from a group of culled dairy cows (n = 57), each laboratory performing a different test procedure, indicated that correlation of haptoglobin concentrations was good between the reported test procedure and the unmodified test and the classical hemoglobin-binding assay that measures peroxidase activity. CONCLUSION: Haptoglobin determination is effective in identifying diseased and healthy cattle. It may be a potentially important tool for application at the farm and slaughterhouse as an aid in improving food safety.

Animals↗

Phosphatidylcholine does not affect peritoneal transport of intact rabbits.

Ultrafiltration and solute transport during 60-min peritoneal dialyses of normal rabbits with intraperitoneal administration of phosphatidylcholine were compared to control values. The ultrafiltration rate of 0.27 mL/Kg/min did not increase when phosphatidylcholine was added. This agent had no effect on the ultrafiltration coefficient, sodium mass transport or solute clearances. Previously reported beneficial results with this agent could be due to repletion of a deficiency or an effect of the organic solvent. More studies of safety and efficacy of phosphatidylcholine are warranted before widespread clinical use.

Animals↗

Prolonged intraperitoneal dwell decreases ultrafiltration coefficient in rabbits.

In rabbits undergoing peritoneal dialysis, hypertonic (6% dextrose) dialysis solution increased the net ultrafiltration rate (UF) from 233 to 462 microL/kg/min, which was not proportional to the increment in the osmotic gradient, so the ultrafiltration coefficient decreased. As intraperitoneal dwell of hypertonic dialysate was prolonged, the gross and net UFs and ultrafiltration coefficients decreased, and the UF per dextrose absorption declined. The decrement in UF was multifactorial, including a component of fluid and solute stagnation, increasing the distance over which osmotic forces must exert their effects. Excessively hypertonic dialysis fluid should be used only briefly to achieve ultrafiltration efficiently and to avoid the high dextrose loading.

Absorption↗

Effects of histamine and its receptor antagonists on peritoneal permeability.

Peritoneal fluid and mass transfer rates were studied in rabbits undergoing control dialyses and dialyses with intraperitoneal histamine, or its receptor antagonists alone or in combination. These drugs had negligible effects on peritoneal ultrafiltration and small solute clearances. Histamine raised protein exudation from 1.6 to 2.9 mg/kg/min, an effect blocked by its antagonists which given alone did not lower protein loss. These data demonstrate the existence of histamine receptors in the peritoneal diffusion barrier and show that they do not control transport under baseline conditions, but can be blocked should abnormal histamine release occur. Increased peritoneal permeability with sterile peritonitis was unaffected by ranitidine, suggesting alternative mediators.

Animals↗

The role of the capillary wall in restricting diffusion of macromolecules. A study of peritoneal clearance of dextrans.

In 5 nephrectomized rabbits the peritoneal clearance of neutral dextrans from plasma to dialysate decreased from 7.8 to 3.3 microliters/kg/min as molecular mass increased from 17,000 to 43,000 daltons, and was relatively constant at 2.8 microliters/kg/min from 49,000 to 97,000 daltons in accord with prior studies. The clearance from dialysate to plasma was measured by determining the distribution volume, which averaged 72 ml/kg, and the plasma concentration 5 h after intraperitoneal instillation. Inward clearances ranged from 11.4 to 19.9 microliter/kg/min, did not correlate well with solute size and were significantly higher than outward clearances. The data suggest that while the capillary wall is the major barrier to macromolecule transfer, absorption can bypass vascular capillaries and occur via the lymphatics. It is suggested that lymphatic flow rate from the peritoneum exceeds 16 microliter/kg/min.

Animals↗

Contrasting effects of amphotericin B and the solvent sodium desoxycholate on peritoneal transport.

To distinguish amphotericin B effects on peritoneal transport from those of the solvent, sodium desoxycholate, dialyses in intact rabbits with either substance added intraperitoneally were compared to controls. Powered amphotericin B added to instilled dialysis fluid increased peritoneal ultrafiltration from 0.31 to 0.44 ml/kg/min (p less than 0.02), but did not affect mass transport (e.g. urea clearance changed from 0.86 to 1.04 ml/kg/min). In contrast, 10 mg of desoxycholate induced peritoneal irritation and raised clearances of urea (0.76-1.34 ml/kg/min), potassium, phosphate and dextrose, but did not affect ultrafiltration. Intraperitoneally, 1 mg/kg of desoxycholate changed clearances inconsistently, but lowered the ultrafiltration rate from 0.33 to 0.21 ml/kg/min. The dialysate-plasma dextrose gradient dissipated faster with 10 mg/kg of desoxycholate. Amphotericin B tended to raise ultrafiltration per osmotic gradient and mass transport of sodium. Selective increase in fluid flux results from amphotericin B, not its solvent.

Amphotericin B↗

The mechanism of dextrose-enhanced peritoneal mass transport rates.

The mechanism whereby hypertonic dextrose affects peritoneal transport was investigated in a short-term model of peritoneal dialysis using alert intact rabbits. During control (1.5% dextrose) dialyses osmotic ultrafiltration was 0.28 mg/kg/min, the clearance of potassium was 0.98, urea 0.54, phosphate 0.32, and dextrose (reverse) 0.21 ml/kg/min. With 4.25% dextrose, the ultrafiltration rate increased to 0.73 ml/kg/min (P less than 0.02), but solute transport did not increase despite the added convective flux. The posthypertonic exchanges did not differ from control despite the effect of residual dialysate contaminating this peritoneal lavage. By indicator dilution residual volume averaged 12% of total dialysate volume. Acute volume expansion by intravenous dextrose after desoxycorticosterone acetate (DOCA) pretreatment increased the ultrafiltration coefficient, potassium and urea clearances significantly, and DOCA alone was ineffective. It is suggested that in uremic humans hypertonic dextrose dialysis increases peritoneal mass transport rates because the absorbed dextrose causes extracellular volume expansion that cannot be eliminated promptly. No evidence of a direct effect of dextrose augmenting peritoneal permeability was detected.

Animals↗

Amphotericin selectively increases peritoneal ultrafiltration.

Because amphotericin B is known to affect transport rates across biologic membranes, the effects of this agent on transport parameters in an animal model of peritoneal dialysis were investigated. When amphotericin B in doses ranging from 0.5 to 25 mg/kg was instilled intraperitoneally with commercial dialysis solution, diffusive clearances of phosphate and urea did not differ from control values measured in the same animals, and only a modest increase in potassium clearance was detected. Ultrafiltration due to the osmotic gradient induced by the dextrose content of the dialysis solution increased significantly to 0.31 mL/kg/min with amphotericin B, compared with control values of 0.18 mL/kg/min. The drug did not affect dextrose transport and the osmotic gradient did not differ in the two groups. Hence, the ultrafiltration coefficient was higher with amphotericin B (14 microL/kg/min/mosm), than during control dialyses (6 microL/kg/min/mosm). Increased water flux was detected at the lowest dose and there was no dose relationship over the range studied. Amphotericin B may be the type of agent that will be clinically useful in patients with reduced peritoneal ultrafiltration capacity, and safer analogues should be explored.

Amphotericin B↗

Ultrafiltration by hyperosmotic peritoneal dialysis fluid excludes intracellular solutes.

During peritoneal dialysis, progressive increments in the osmotic gradient increase ultrafiltration rate. Solute transport by convective flux is thereby raised but there is no preferential increase in potassium clearance. The data imply that ultrafiltrate derives from extracellular fluid alone. Mesothelial cells appear to resist solute and water flux in response to an immediately adjacent osmotic gradient.

Animals↗