This article will discuss the consequences of chronic hyponatremia. In conditions such as cancer, heart failure, liver cirrhosis, or chronic kidney disease, the presence and magnitude of hypotonic hyponatremia are considered to reflect the severity of the underlying disease and are associated with increased morbidity as well as mortality. Hyponatremia can be acute (<48 h) or chronic (>2–3 days). Chronic hyponatremia is associated with attention deficit, dizziness, tiredness, gait disturbance, falls, sarcopenia, bone fractures, osteoporosis, hypercalciuria (in the syndrome of inappropriate antidiuresis—SIADH), and kidney stones. In vitro studies have shown that cells grown in a low concentration of extracellular sodium have a greater proliferation rate and motility. Patients with chronic hyponatremia are more likely to develop cancer. We will not review the clinical consequences of respiratory arrest and osmotic demyelination syndrome (ODS) of the too-late or excessive treatment of hyponatremia.
Background: We previously reported that for around 5% of patients hospitalized with hyponatremia, it was related to what is called “transient renal salt wasting” (TRSW). In the present study we ask whether TRSW can also be observed in patients without hyponatremia. Methods: In this observational retrospective study we analyze the urine solute excretion of 200 consecutive normonatremic patients with normal kidney function and admitted in our department over one year. Patients were selected for analyses of FE.K, UCa/UCr and FE.PO4 if FE.Na was higher than 2% (N < 1.6%) before any treatment, and only if they were not taking diuretics. Result: Eleven normonatremic patients presented with transient high FE.Na > 2% on admission (2.9 ± 0.6% with a high FE.K of 28 ± 6.4%; a high UCa/UCr of 0.37 ± 0.13 and a high FE.PO4 of 23.2 ± 9.6%). All of these patients were elderly. Seven were female and four were male. Neurological disorders were observed in six patients (three strokes, one transient ischemic attack, one syncope and one epileptic attack). Heart problems were observed in three patients (all angina pectoris, two of which also had HBP). One patient presented with rectal bleeding with HBP, and another presented COPD with a pneumothorax. One patient with angina pectoris showed a transient relapse after four days of hospitalization (FE.Na 3.6%). The urine electrolyte excretion in these patients are similar to those observed after furosemide intake. Conclusion: Normonatremic TRSW is not a rare observation, particularly in patients with neurological or cardiac problems.
Background: Chronic hyponatremia is known to be associated with osteoporosis. It has been shown that chronic hyponatremia increases bone resorption in an attempt to release body stores of exchangeable sodium by different mechanisms. We wanted to know the calciuria of patients with hyponatremia of different origins. Material and Methods: We made a retrospective study of 114 consecutive patients with asymptomatic hyponatremia of different origins with the usual serum and urine chemistry. Result: In hyponatremia due to SIADH, we had a high urine calcium/creatinine ratio of 0.23 ± 0.096 while in patients with salt depletion the UCa/UCr ratio was low (0.056 ± 0.038), in patients with hyponatremia secondary to thiazide intake the value was also low (0.075 ± 0.047) as in hypervolemic patients (0.034 ± 0.01). In hyponatremia due to polydipsia, the value was high (0.205 ± 0.10). Correction of hyponatremia in the euvolemic patients was associated with a significant decrease in the UCa/UCr ratio. In patients with hyponatremia secondary to thiazide intake, we noted that in the patients with low uric acid levels (<4 mg/dL, suggesting euvolemia) we also observed a low UCa/UCr (<0.10). In nine patients with chronic SIADH (SNa 125.1 ± 3.6 mEq/L), the 24 h urine calcium excretion was 275 ± 112 mg and decreased to 122 ± 77 mg (p < 0.01) after at least 2 weeks of treatment. Conclusions: Patients with chronic hyponatremia due to SIADH usually have a high UCa/UCr ratio (>0.15). This is also observed in hyponatremia secondary to polydipsia. Patients with thiazide-induced hyponatremia usually have low UCa/UCr levels and this is the case even among those with a biochemistry similar to that in SIADH (uric acid < 4 mg/dL).
International guidelines designed to minimize the risk of complications that can occur when correcting severe hyponatremia have been widely accepted for a decade. On the basis of the results of a recent large retrospective study of patients hospitalized with hyponatremia, it has been suggested that hyponatremia guidelines have gone too far in limiting the rate of rise of the serum sodium concentration; the need for therapeutic caution and frequent monitoring of the serum sodium concentration has been questioned. These assertions are reminiscent of a controversy that began many years ago. After reviewing the history of that controversy, the evidence supporting the guidelines, and the validity of data challenging them, we conclude that current safeguards should not be abandoned. To do so would be akin to discarding your umbrella because you remained dry in a rainstorm. The authors of this review, who represent 20 medical centers in nine countries, have all contributed significantly to the literature on the subject. We urge clinicians to continue to treat severe hyponatremia cautiously and to wait for better evidence before adopting less stringent therapeutic limits.
In the ICU, the prevalence of hyponatremia (< 135 mEq/l) is around 15%, and 4.5% have a SNa lower than 125 mEq/l [1]. Outside the hospital for patients aged more than 65 y.o. the prevalence is 4.3% (for SNa < 135 mEq/l) and 0.14% have a SNa lower than 126 mEq/l [2,3]. In virtually all common conditions, the presence of hyponatremia is associate with increased morbidity and mortality, regardless the levels of hyponatremia (for a review, see Ref. [3]).
Background: Chronic hyponatremia has been reported to be associated with low solute intake and low creatinine excretion (reflecting likely sarcopenia). We wanted to study the effect, on the long term, of correction of hyponatremia on solute and creatinine excretion in chronic SIADH. Methods: We made a retrospective review of clinical and biochemical data of patients with euvolemic hyponatremia. We analyzed 24-h urine solute and creatinine excretion in volunteers with hyponatremia induced by dDAVP over 4 days, in 12 patients with chronic SIADH (>1 month) before and after a few days of SNa correction and in 12 patients (6 women and 6 men) before and after 3 months of SNa correction by a vaptan or urea. Results: We confirm a low urine creatinine and solute excretion only in patients with chronic hyponatremia (>1 month). Correction of SNa (from 127 ± 2.3 mEq/L to 139 ± 2.8 mEq/L) for >3 months, in the 12 patients (mean age 58 ± 18), was associated with an increase in 24-h creatinine excretion (from 986 ± 239 to 1,238 ± 220 mg; p < 0.02) and in patients treated with a vaptan (n = 5) solute excretion increased from 656 ± 207 mmol/24 h to 960 ± 193 mmol/24 h (p < 0.02). Sodium excretion increased also in the 12 patients (from 100 ± 53 mEq/24 h to 169 ± 38 mEq/24 h; p < 0.01). Conclusion: Chronic hyponatremia (>1 month) is associated with a decrease in solute output (or intake) and in creatinine excretion. In many patients, these abnormalities are reversible in the long term.
INTRODUCTION:We aimed to study the effects of daily variation in solute intake on urine volume in patients with syndrome of inappropriate secretion of antidiuretic hormone secretion (SIADH), syndrome of nephrogenic antidiuresis (NSIAD), central diabetes insipidus (CDI), or nephrogenic diabetes insipidus (NDI).MATERIALS AND METHODS:In 6 patients with CDI, 7 patients with NDI, 7 patients with SIADH, and 2 patients with NSIAD we had the opportunity to have 24-hour urine collections during normal diet before any treatment. We had two 24-hour urine collections with a difference of at least 20% in solute output (measured by the formula urine osmolality × urine volume). In 1 patient with NDI taking a high protein diet we analyzed the effect of a normal protein intake on diuresis. With respect to patients with NDI and CDI we included only patients with a urine osmolality lower than 110 mOsm/kgH2O, and for SIADH/NSIAD we included only patients with a urine osmolality between 500 and 700 mOsm/kgH2O.RESULTS:When the data of the patients with CDI/NDI were pooled, a high correlation between urine volume and solute output was observed (R = 0.83; p < 0.001). In 1 patient with X-linked NDI, we decreased urine volume simply by decreasing protein intake. If we pooled the data concerning SIADH/NSIAD, a correlation was observed between urine volume and solute output (R = 0.94; p < 0.001). As expected, increasing solute intake is beneficial in SIADH/NSIAD, while decreasing it decreases diuresis in NDI.CONCLUSION:Daily variations in solute output affect urine volume in NDI/CDI/SIADH/NSIAD, this could affect serum sodium (SNa) despite no variation in fluid intake. In SIADH, if solute intake is lower than usual for a few days it may significantly influence the SNa level despite no variation in fluid intake.
Dilute urine may be considered to have an isotonic portion and an electrolyte-free water portion. The proportions of electrolytes-free water and isotonic can be measured by the ratio of effective solutes (principally sodium and potassium, with associated anions) between the plasma and the urine [ [1] Furst H. Hallows K.R. Post J. Chen S. Kotzker W. Goldfarb S. et al. The urine plasma electrolyte ration: a predictive guide to water restriction. Am J Med Sci. 2000; 319: 240-244 Crossref PubMed Google Scholar , [2] Grant P. Ayuk J. Bouloux P.M. Cohen M. Cranston I. Murray R.D. Rees A. Thatcher N. Grossman A. The diagnosis and management of inpatient hyponatremia and SIADH. Eur J Clin Invest. 2015; 45: 888-894 Crossref PubMed Scopus (52) Google Scholar ]. Restriction of water intake to less than the amount of electrolyte-free water excreted will cause serum sodium to rise.
Introduction: Hyponatremia is the most common fluid and electrolyte abnormality. It is associated with much higher morbidity and mortality rates than found in non hyponatremic patients.Areas covered: When the physician is faced to a hyponatremic patient he first has to confirm that hyponatremia is associated with hypoosmolality. Then he must answer to a series of questions: What is its origin? Is it acute or chronic? Which treatment is the most appropriate? We will discuss the various options for the treatment of hypotonic hyponatremia. For a better comprehensive approach of the treatment we will also discuss some pathophysiological data. The use of urea in euvolemic and hypervolemic hyponatremia will be particularly discussed. Literature was reviewed from Jan 1970 to Dec 2019.Expert opinion: Prospective studies showing the benefit in decreasing morbidity by increasing SNa in patients with chronic hyponatremia should be done. These studies should also compare the efficacy and side effects of urea therapy compare to vaptans.
Background: In hyponatremia, due to the inappropriate secretion of antidiuretic hormone (SIADH), a high versus low solute intake will affect the urine volume (UV) and, hence, the SNa level. The clinical implication of the fractional solute excretion is presented. Methods: In 35 normal controls and 24 patients with SIADH and urine osmolality higher than serum osmolality, we compared exact solute intake obtained from 24 h urine collection, with the estimated value obtained on a urine morning spot sample by the formula: eGFR (L/min) × Sosm × 1440 × FE.Osm (%) = mmol/24 h. The exact UV was compared with the estimated value given by the formula: eGFR × 1440 × S.Creat/U.Creat (for eGFR the MDRD was used). In 65 patients with chronic SIADH, from which a morning spot urine sample was available, we determined the estimated fluid and solute intake. Results: A good correlation was observed between the measured solute output or urine volume and the estimated values obtained from the controls (r = 0.86) as well as in SIADH (r = 0.91). Conclusion: Patients with low solute intake (FE.Osm <1.4%) and low diuresis (V/eCcr <0.8%) should increase their intake by taking oral urea, for example. Patients with high solute intake (FE.Osm >2.5%) and high diuresis (V/eCcr >1.5%) could usually be treated by mild water restriction (<1.5–21/24 h).