PubMed HealthSearch

Biomedical subjects

D Brobst

Publications and source records attributed to D Brobst.

8 recordsLinked to original sources

Urinalysis and associated laboratory procedures.

Macroscopic examination of urine is an integral part of urinalysis, and blood and bile pigments are a common cause of abnormal coloration. Urine SG is a convenient index of urine concentration and should be correlated with the patient's hydration status to determine the ability of the kidneys to concentrate and dilute urine. The pH of urine of dogs and cats normally is dietary dependent, but alkaline urine may suggest that the urinary tract is infected with a urea splitting organism. The dipstick test for proteinuria is convenient but less reliable than the sulfosalicylic acid method. The dipstick test for blood should not be used as a substitute for microscopic examination of urine but is of value in detecting hemoglobinuria and myoglobinuria, when red cells may be absent in the sediment. The finding of glucose, ketones, and bilirubin in urine, when interpreted properly, may indicate the presence of disease processes not associated with the urogenital tract. Microscopic examination of urine sediment must be interpreted in combination with the physical and chemical composition of urine, but excessive numbers of cells, casts, crystals, and bacteria may provide evidence of disease. The absence of these structures in the sediment, however, does not eliminate the possibility of disease. The ability of the kidneys to concentrate urine is dependent on normal kidney function and the production and release of ADH. A urine SG greater than 1.030 in dogs and 1.035 in cats indicates that the functions associated with concentrating urine are adequate. In the evaluation of the patient's ability to form concentrated urine, the status of hydration must be considered; this may require water deprivation tests or administration of ADH. The estimation of blood urea nitrogen concentration, with the use of test strips, may provide a convenient but not specific measure of renal function.

Animals

Review of the pathophysiology of alterations in potassium homeostasis.

The 2 interrelated systems of external and internal balance that regulate potassium homeostasis must function properly if normal plasma potassium concentration and total body potassium content is to be maintained. Should external balance fail, with renal or gastrointestinal wasting of potassium, hypokalemia with depletion of total body potassium may result. In the absence of this type of potassium wasting, hypokalemia most often is caused by redistribution, with potassium moving from the extracellular-fluid into cells and total body potassium content remaining unaltered. Likewise, factors regulating internal balance may redistribute potassium from cells into the extracellular fluid and cause hyperkalemia, but with normal total body potassium content. Should the kidneys or urinary system fail to excrete potassium, hyperkalemia with an increase in total body potassium content would result.

Animals

Evaluation of clinical disorders of acid-base balance.

An understanding of acid-base disturbances depends on the interpretation of changes in blood pH, P-co-2, and bicarbonate concentration and a comprehension of the physiologic mechanisms that control them. The physiologic relationships between Pco-2 and bicarbonate can be visualized by means of the balance nomogram and this visualization facilitates determination of any excess or deficit for both respiratory and metabolic factors.

Acid-Base Equilibrium