Background: The major stress response to critical illness leads to a catabolic state and loss of lean body mass.Aims: To test whether an increased rate of creatinine excretion might provide unique and timely information to monitor cell catabolism; to relate this information to balances of cell constituents (nitrogen, potassium, phosphate and magnesium); to evaluate the effectiveness of nutritional therapy to reverse this catabolic process.Design: Prospective observational study.Methods: Children with severe traumatic brain injury admitted to the paediatric critical care units of The Hospital for Sick Children, Toronto, Canada and Hospital das Clnicas, Faculty of Medicine of Ribeiro Preto, University of So Paulo, Brazil were studied. Complete 24 h urine collections were obtained for measurement of creatinine excretion rate and daily balances of nitrogen, potassium, phosphate and magnesium.Results: Seventeen patients were studied for 310 days. On Day 1, all had negative balances for protein and phosphate. Balances for these intracellular constituents became positive when protein intake was >= 1 g/kg/day and energy intake was >= 50% of estimated energy expenditure (P < 0.0001). Creatinine excretion rate was positively correlated with the urea appearance rate (r = 0.60; P < 0.0001), and negatively with protein balance (r = -0.45; P < 0.0001). Sepsis developed in four patients; before its clinical detection, there were negative balances for all intracellular markers and an abrupt rise in the excretion of creatinine.Conclusions: Negative balances of intracellular components and an increase in rate of creatinine excretion heralded the onset of catabolism.
In this teaching exercise, the goal is to demonstrate how an application of principles of physiology can reveal the basis for a severe degree of acidaemia ( pH 6.81, bicarbonate < 3 mmol/ l ( P-HCO3), PCO2 8 mmHg), why it was tolerated for a long period of time, and the issues for its therapy in an 8-year-old female with diabetic ketoacidosis. The relatively low value for the anion gap in plasma ( 19 mEq/ l) suggested that its cause was both a direct and an indirect loss of NaHCO3. Professor McCance suggested that ileus due to hypokalaemia might cause this direct loss of NaHCO3, and that an excessive excretion of ketoacid anions without NH4+ in the urine accounted for the indirect loss of NaHCO3. In addition, he suspected that another factor also contributing to the severity of the acidaemia was a low input of alkali. He was also able to explain why there was a 16-h delay before there was a rise in the PHCO3 once therapy began. The missing links in this interesting story, including a possible basis for the hypokalaemia, emerge during the discussion between the medical team and Professor McCance.
The purpose of this study was to provide a better understanding of the physiological role of endogenous net organic acid production in rats consuming their usual diet. Balance studies were performed over 24 h, and urine was collected in the day and night portions of the diurnal cycle. A supplemented low-electrolyte diet (LED) was fed to determine whether urinary organic anions were identical to those in the diet. A titration procedure was developed to determine the p K of titratable groups in the urine of rats studied with and without an acid load. Although normal rats excreted net acid (NAE), the latter was inversely related to the amount of food consumed. The rates of excretion of bicarbonate ([Formula: see text]), citrate, unmeasured organic anions, and [Formula: see text] were higher in the night portion of the diurnal cycle. NAE rose dramatically when alkali intake was decreased by consuming the LED. Dietary and urinary organic anions were not identical because rats fed the LED supplemented with potassium citrate excreted <10% of this alkali load as citrate and <25% as[Formula: see text]. In the 24 h after 3,000 μmol NH4Cl was given intraperitoneally, H+ did not appear to be retained, yet NAE rose by only close to 2,000 μeq. The rate of excretion of titratable groups with a p K in the 3 to 5 pH range fell by close to 1,000 μeq; most of these changes occurred in the first 7 h after NH4Cl was given. We conclude that rat chow provides a large net alkali load. There appear to be two types of endogenous acid production, a form associated with a rise in NAE (e.g., sulfuric acid) and dietary alkali-driven endogenous net acid production, which titrates this alkali. Renal excretion of organic anions makes these acids end products of metabolism.
We evaluated whether altering the rate of excretion of sodium (Na) and chloride (Cl) when antidiuretic hormone (ADH) acts would cause urea to behave as an 'effective' or 'ineffective' urinary solute. Urine composition was compared to that in the excised papillary tip in rats treated with DDAVP while on a normal or a low electrolyte diet; half the rats were given a urea load. Studies were also carried out in humans who were water restricted for 12 to 16 hours and given DDAVP. One group had a high rate of NaCl excretion induced by a thiazide diuretic, while the other group consumed a low salt diet to decrease the rate of excretion of electrolytes. Urea (3 mmol/kg) was ingested after the control urine samples were collected. On the high salt protocols, the urine flow rate was directly proportional to the rate of excretion of electrolytes ('non-urea' osmoles) and there was no change in the 'non-urea' osmolality despite large changes in Na and Cl excretion rates. After urea was administered, there was no change in urine flow rate, 'non-urea' osmolality, or 'non-urea' osmole excretion rate, whereas the urinary urea concentration, urine osmolality and the rate of excretion of urea were higher. The papilla of the salt-loaded rats had a similar urea concentration to that in the urine. In contrast, in the low electrolyte excretion protocols, the sum of the concentrations of 'non-urea' osmoles in the urine was much lower than that in the excised papilla, and the converse applied to urea. Similar changes were observed in the composition of the urine in human subjects with high and low rates of excretion of electrolytes. We conclude that urea appears to be an 'ineffective' urine osmole when there is a high rate of salt excretion, whereas urea is an 'effective' osmole when there is a low rate of excretion of electrolytes.
Our purpose is to review the topic of acute postoperative hyponatremia by focusing on pertinent aspects of the physiology of water and solute excretion. Four areas will be highlighted: an examination of the source of addition of electrolyte-free water, an exploration of the basis for the very large natriuresis that occurs during cerebral salt wasting following neurosurgery, possible reasons to explain why acute postoperative hyponatremia may pose a greater risk for young women [Ayus and Arieff 1996, Ayus et al. 1992, Arieff 1986, Wijdick et al. 1991], and issues related to treatment of acute hyponatremia.
Purpose: To evaluate the effectiveness and mode of action of the osmotic diuretic mannitol to prevent the development of acute hyponatremia in a setting designed to mimic the acute hyponatremia observed on the day of surgery. Results: Hyponatremia (129 +/- 1 mM, fall of 10 +/- 1 mM, p <0.01) was induced by the intraperitoneal administration of half-isotonic saline plus DDAVP to rats (n = 8); hyponatremia was due to a positive balance of electrolyte-free water (EFW). Rats given mannitol (10 mmol/kg body wt) in addition to the hypotonic saline plus DDAVP had only a minor degree of hyponatremia (plasma [Na+] 136 +/- 1 mM, fall 3 +/- 2 mM, p >0.05). All the mannitol given was excreted over the 16 h of observation, but the urine volume was not higher in these rats. The higher rate of excretion of EFW was due to a marked reduction in the rate excretion of Na+ with mannitol. This antinatriuresis was also present when mannitol was given intravenously. Conclusions: Although mannitol increased the excretion of EFW, the mechanism required an enhanced renal reabsorption of Na+ rather than an increase in the urine flow rate.
The purpose of this report is to determine the mechanisms that lead to hyponatremia when isotonic saline was the only fluid infused into rats given antidiuretic hormone (ADH), and what might minimize the degree of this hyponatremia. Normal rats were deprived of food and water for the 24-hr study period. They received an infusion of isotonic saline to expand their extracellular fluid (ECF) volume with and without exogenous ADH administration (N = 8 in each of the four groups). Similar studies were also carried out in 32 rats fed a low electrolyte diet for 72 hr before the experiment. An additional control group was fed the low electrolyte diet supplemented with sodium (Na), potassium (K), and chloride (Cl). Hyponatremia developed over 24 hr in rats fed their usual diet if treated with ADH and isotonic saline (fall, 13 +/- 2 mM, P < 0.01). The hyponatremia was caused by negative balance for Na + K salts. Hyponatremia did not develop after the saline + ADH treatment if rats were pretreated for 3 days with a low electrolyte diet. Two factors were required to develop this hyponatremia--generation of electrolyte-free water as a result of the excretion of a large quantity of Na + K salts at a high concentration in the urine, and prevention of the excretion of this electrolyte-free water by ADH. Increasing the avidity for Na reabsorption by the kidney prevented this type of hyponatremia from developing.
BACKGROUND:It is widely presumed that the development of postoperative hyponatremia (which may be severe) results from administration of hypotonic fluids while antidiuretic hormone is acting. OBJECTIVE:To show that hyponatremia would occur in patients 24 hours after surgery if only near-isotonic solutions are given and to evaluate the mechanisms responsible for hyponatremia in this setting. DESIGN:Prospective cohort study. SETTING:University medical center. PATIENTS:22 women who were having uncomplicated gynecologic surgery with infusion of near-isotonic solutions only (sodium chloride, 154 mmol/L, or Ringer lactate [sodium, 130 mmol/L, and potassium, 4 mmol/L]). MEASUREMENTS:Plasma electrolyte levels were measured at the time of induction of anesthesia and 24 hours later. Data on the balance of water and electrolytes were obtained for the same 24-hours period. RESULTS:At the time of induction of anesthesia, the plasma sodium concentration was 140 +/- 1 mmol/L; 24 hours later, it decreased in 21 of 22 patients (mean decrease, 4.2 +/- 0.4 mmol/L [P < 0.001]; lowest level, 131 mmol/L in 2 patients). The urine remained hypertonic (peak sodium plus potassium concentration in urine, 294 +/- 9 mmol/L) in all patients for the first 16 hours after induction of anesthesia. CONCLUSIONS:Postoperative hyponatremia occurred within 24 hours of induction of anesthesia when only near-isotonic fluids were infused. Hyponatremia was generally caused by generation of electrolyte-free water during excretion of hypertonic urine-a desalination process. This electrolyte-free water was retained in the body because of the actions of antidiuretic hormone. If the pathophysiology of this hyponatremic state is understood, recommendations for its prevention and treatment can be deduced.
A young male sustained very serious head and soft tissue injuries in a motor vehicle accident (MVA). Three interesting problems developed in the sodium (Na) and water area in the second week in hospital.
A deficit of K+ of close to 300 mmol develops in the first 2 wk of fasting, but little further excretion of K+ occurs, despite high levels of aldosterone and the delivery of ketoacid anions that are not reabsorbed in the distal nephron. Our purpose was to evaluate how aldosterone could have primarily NaCl-retaining, rather than kaliuretic, properties in this setting. To evaluate the role of distal delivery of Na+, four fasted subjects received an acute infusion of NaCl to induce a natriuresis. To assess the role of distal delivery of HCO3-, five fasted subjects were given an infusion containing NaHCO3. The natriuresis induced by an infusion of NaCl caused only a small rise in the rate of excretion of K+ (0.8 +/- 0.1 to 1.9 +/- 0.3 mmol/h); in contrast, when HCO3- replaced Cl- in the infusate, K+ excretion rose to 8.3 +/- 2.2 mmol/h, despite little excretion of HCO3- (urine, pH 5.8) and similar rates of excretion of Na+. The transtubular K+ concentration gradient was 19 +/- 3 with HCO3- and 6 +/- 2 with NaCl. We conclude that the infusion of NaHCO3 led to an increase in K+ excretion, likely reflecting an increased rate of distal K+ secretion. With a low distal delivery of HCO3-, aldosterone acts as a NaCl-retaining, rather than a kaliuretic, hormone.
Polyuria due to a glucose-induced osmotic diuresis is common in patients with hyperglycemia. This diuresis usually abates when the plasma glucose level approaches its renal threshold; the usual time course is less than 8 hours after commencing therapy. A 69-year-old man with non-insulin-dependent diabetes mellitus maintained hyperglycemia (540 mg/dL) and polyuria (4.7 L/24 hr) for 40 hours. Becaue there was no external supply of glucose, a balance study was conducted between the third and 40th hour after commencing treatment. In this interval, the overall concentration of glucose in the urine was less than 100 mmol/L and the urine osmolality was 378 mOsm/kg H2O. To evaluate the expected composition of the urine during a glucose-induced osmotic diuresis, urine was analyzed in normal rats infused with glucose plus urea and in untreated BB diabetic rats (plasma glucose and urea similar to that in our patient) as well as in 29 patients with hyperglycemia and polyuria. Glucose accounted for 60% of the urinary osmoles in rats and humans. Two subgroups of patients had a much lower urine glucose: one had an impaired concentrating ability (n = 6) and the other had an increased rate of renal glucose reabsorption (n = 5). In conclusion, in polyuria caused by hyperglycemia, the urine glucose should be 300 to 400 mmol/L with normal renal function. In the case we report, both the concentration of glucose and its excretion rate were much lower than expected with steady-state hyperglycemia (540 mg/dL) due to the high rate of excretion of NaCl, a concentrating defect, and excessive renal reabsorption of glucose.
Summary: Hyponatraemia is a common electrolyte abnormality that signals an expanded intracellular fluid (ICF) volume in most cases (e.g. absence of hyperglycaemia). the approach to the patient with hyponatraemia that is outlined in this paper is based on its pathophysiology and emphasizes a quantitative analysis. Both the change in ICF volume and the content of sodium (Na) in the extracellular fluid (ECF) are calculated while the volume of ECF is assessed clinically. to perform the calculations, the normal ICF and ECF volumes from body composition are estimated. the next step is to determine the basis for water retention (usually the reason why antidiuretic hormone [ADH] is released) and then the basis for the Na imbalance. Therapy is dictated by the presence or absence of severe symptoms: if the patient is symptomatic, the plasma Na concentration should be raised by 3‐5 mmol/L in 1 h. If not, the aim of therapy is to correct the water surplus and Na deficit slowly (aim for a rise in plasma Na concentration of 6–12 mmol/L per day). Changes in the ICF composition must also be considered. If there is a deficit of potassium (K), therapy with K salts (KCI instead of NaCI) will be required. A case example is provided to illustrate these points.
Urea absorption in the inner medullary collecting duct provides a mechanism to elevate the concentration of urea in the papillary interstitial fluid and thereby permit the excretion of urea with as little water as possible. Urea reabsorption may have another important effect - to aid in the excretion of potassium (K). K excretion depends on two processes: first, factors such as aldosterone which cause the concentration of K in the luminal fluid of the cortical distal nephron to be high and, second, factors which augment the flow rate through those nephron segments. Since the osmolality of the luminal fluid in the cortical collecting duct (CCD) and plasma are equal when antidiuretic hormone acts, the flow rate in the CCD is dependent on solute delivery. Urea is a major solute in the lumen of the CCD and thereby plays an important role in maintaining the CCD flow rate. Since urea and K are often found in the same foods, having urea help the excretion of K is potentially advantageous. If the excretion of urea was low, the flow rate in the terminal CCD would decline. In this circumstance, the luminal K concentration would have to rise in proportion to the fall in flow rate or there would be a diminished rate of excretion of K and, possibly, hyperkalemia.