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Potassium Supplementation Reduces Cardiac and Renal Hypertrophy Independent of Blood Pressure in DOCA/Salt Mice
http://www.100md.com 《高血压学杂志》 2005年第9期
     the Division of Nephrology (Q.W., M.B.) and the Department of Medicine (A.A.D., T.P.), University Hospital, Lausanne, Switzerland.

    Abstract

    We have demonstrated previously that deoxycorticosterone acetate (DOCA)/salt induces cardiac hypertrophy and left ventricular dysfunction independent of blood pressure (BP) in 1eCrenin gene mice. Because these mice also develop hypokalemia and metabolic alkalosis caused by mineralocorticoid excess, we investigated whether correcting hypokalemia by dietary potassium supplementation would prevent the DOCA/salt-induced cardiac hypertrophy, cardiac dysfunction, and electrocardiographic changes in normotensive, 1eCrenin gene and hypertensive, 2eCrenin gene mice. All mice were studied after 5 weeks of DOCA and salt administration. Potassium was given by adding 0.4 or 0.6% KCl to the drinking water. Our results show that correction of hypokalemia and metabolic alkalosis prevents cardiac hypertrophy and normalizes cardiac function without affecting BP in normotensive, 1eCrenin gene mice. In hypertensive, 2eCrenin gene mice, potassium supplementation induces a significant decrease in BP. The decrease in BP and correction of kalemia are associated with a significant but partial correction of cardiac hypertrophy. In both group of mice, electrocardiographic alterations were measured after administration of DOCA/salt, which could be corrected by potassium supplementation. Thus, these results show that correction of hypokalemia and metabolic alkalosis does prevent the development of cardiac hypertrophy and normalizes cardiac function independent of BP in normotensive, 1eCrenin gene mice that receive excess mineralocorticoid and salt. In 2eCrenin gene, hypertensive mice, potassium supplementation also prevents the development of cardiac hypertrophy, but the effect cannot be separated from the decrease in BP.

    Key Words: hypokalemia metabolism hypertrophy heart failure deoxycorticosterone mouse

    Introduction

    There is substantial clinical and experimental evidence that potassium depletion, or hypokalemia, has a negative impact on the cardiovascular system as well as on the kidney and contributes to the pathogenesis of hypertension, stroke, ventricular arrhythmias, and renal injury.1eC7 Thus, even mild potassium depletion has been shown to produce a substantial impairment of cardiac function in dogs and healthy human subjects.8,9 Several studies have also demonstrated that hypokalemia or mineralocorticoids that induce hypokalemia can affect cardiac structure, leading to cardiac necrosis and fibrosis in experimental animals and humans.8,10eC13 Conversely, potassium supplementation appears to be rather cardioprotective and nephroprotective. Indeed, a high potassium intake and prevention of hypokalemia have been associated with a decrease in blood pressure (BP) in hypertensive animals and humans.14eC19 Potassium supplementation has also been shown to prevent stroke; to reduce mortality in stroke-prone spontaneously hypertensive and Dahl salt-sensitive rats; and to prevent renal glomerular, tubular, and vascular lesions in rats.14,17,20,21

    Together with systemic hypertension and metabolic alkalosis, hypokalemia is the clinical hallmark of mineralocorticoid excess. Several experimental studies in rats have demonstrated that excess mineralocorticoids due to the administration of aldosterone or deoxycorticosterone acetate (DOCA) together with salt induce cardiac hypertrophy and, in some cases, cardiac interstitial and perivascular fibrosis.12,13,22 In these models, the development of left ventricular hypertrophy and cardiac fibrosis has been attributed essentially to the increase in BP and the excess of mineralocorticoid and salt. Whether hypokalemia, which is always present in these situations, also contributes to the development of left ventricular hypertrophy independent of BP changes has so far been difficult to ascertain.23 We have recently reported that mice treated with DOCA and 1% NaCl develop hypokalemia, metabolic alkalosis, renal and cardiac hypertrophy, and left ventricular dysfunction.24,25 In these mice, left ventricular hypertrophy develops in the absence of systemic hypertension in 1eCrenin gene mice and in parallel with the increase in BP in hypertensive, 2eCrenin gene mice.24 These 2 mouse models provide a good opportunity to investigate the respective roles of hypokalemia and hypertension in the development of cardiac hypertrophy in response to mineralocorticoid excess. Therefore, we investigated whether correcting hypokalemia by dietary potassium supplementation affects DOCA/salt-induced cardiac hypertrophy and subsequent dysfunction in 1eC and 2eCrenin gene mice. Our results show that indeed hypokalemia contributes to the development of cardiac hypertrophy independent of BP changes in 1eCrenin gene mice.

    Methods

    Mice and Experimental Protocol

    Seven-week-old, male, wild-type backcross N5eC6(129Ola/C57BL/6J) mice (weight, 22 to 26 g) obtained from the Institute of Pharmacology, University of Lausanne, Lausanne, Switzerland, that were homozygous for either the Ren-1c gene locus (1eCrenin gene mice) or the Ren-1d/Ren-2 gene loci (2eCrenin gene mice) were used throughout these experiments. The characteristics of these mice have been described earlier.24 The DOCA/salt model was induced as published earlier.24 Mice were given 1% NaCl to drink. Control mice also underwent uninephrectomy without DOCA administration but received tap water as the drinking fluid, as described previously. All mice received regular food, containing 3 mg Na+ and 7.5 mg K+/g pellet (U.A.R.). In the potassium-supplementation groups, DOCA/salt-treated mice received either 0.4% or 0.6% KCl in the drinking water. Considering that the amount of fluid intake in the DOCA/salt-treated mouse is 25 mL/d, the potassium intake in DOCA/salt- and supplementary potassiumeCtreated mice ranged between 75 and 100 mg/d, including the amount of potassium derived from the food (3 g pellet per day, containing 22.5 mg K+). In the potassium-supplemented groups, potassium intake was 3- to 4-fold higher than in control DOCA/salt-treated mice (receiving 22.5 mg K+ per day). All mice were treated for 5 weeks. Each group of mice consisted of at least 8 individuals.

    BP, HR, and Heart and Kidney Indices

    BP and heart rate (HR) were recorded intra-arterially with a computerized data-acquisition system as described earlier.24 Thirty minutes after implantation of the catheter into the carotid artery, the arterial line was connected to a pressure transducer, and BP and HR were monitored every 20 seconds for 20 minutes. Once BP was measured and blood sampled for laboratory values, mice were killed, and the heart and kidneys were rapidly excised, washed with cold PBS, dried with soft facial tissue, and weighed. To determine cardiac and renal hypertrophy, cardiac and kidney weight indices were calculated according to heart and kidney weight (mg) to body weight (g) ratios.

    Determination of Cardiac Contractility

    Determination of cardiac contractility was performed as described previously.25 In brief, the mouse was anesthetized with 1% to 2% halothane mixed with O2. The right carotid artery was dissected and exposed for 5 mm of its length. A custom-made Pebax 03 fluid-filled catheter was advanced into the left ventricle through the right carotid artery.25 The correct position of the catheter tip in the left ventricle was then confirmed by the waveform of left ventricular pressure visualized on a Hewlett-Packard monitor. The arterial line was connected to the computerized data acquisition system to record left ventricular pressure, left ventricular end-diastolic pressure (LVEDP), LVdP/dtmax, LVdP/dtmin, and the time constant of isovolumic relaxation (Weiss ) at a sampling rate of 1000 Hz.25

    Biochemical Analyses

    To measure blood pH and serum and urinary Na+ and K+ values, 75 e and 400 to 500 e, respectively, of blood was drawn from the carotid artery into hematocrit capillaries (75 mm/75 e) and 0.6-mL Multivette tubes containing gel/clot activator (Sarstedt). Blood pH was measured with the 248pH/blood gas analyzer (Rapidlab, Bayer). Serum and urinary Na+ and K+ values were measured by flame photometry (model 943, Instrumentation Laboratory). Blood was drawn from the arterial catheter after the BP measurements were completed. Studies performed in our laboratory have demonstrated that blood sampling via an intra-arterial catheter generates less stress in mice than does decapitation or retro-orbital blood sampling. Indeed, plasma norepinephrine levels were 6-fold higher with decapitation than with the use of a carotid artery catheter and were almost 2-fold higher with retro-orbital blood sampling.26

    In Vivo ECG Recordings and Analysis

    Six-lead, surface-limb ECG measurements (I, II, III, aVF, aVL, and aVR) were recorded in mice under halothane anesthesia. Anesthetized (1 minute halothane) mice were positioned prone on a custom-made ECG recording platform that included a gas mask for continuous halothane administration. Ag/AgCl gel-coated ECG electrodes (Unomedical) were attached to the 2 front and left rear paws of the mouse. The electrodes were connected to a standard 6-leads ECG amplifier module (EMKA Technologies), which included high- and low-pass filters (set to 0.05 and 500 Hz, respectively) and a gain selection device (set to 1000-fold). Signals were digitized continuously at 1 kHz and recorded with the IOX data acquisition system (EMKA Technologies).

    ECG Analysis

    ECGAuto software (EMKA Technologies) was used to analyze the data recorded. For each mouse, qualitative analysis of cardiac rhythm and measurements of HR were performed on 30 minutes of continuous experimental recording. Quantitative analysis of interval durations and wave surfaces was carried out on a 30-second interval taken 1 minute after the beginning of each 30-minute recording. Within the chosen 30-second period, electrical complexes were averaged in blocks of 5 to minimize background noise and to increase the wave recognition power of the software.

    ECG recordings were analyzed as described by Royer et al.27 The corrected QT interval (QTc) was calculated according to the formula by Mitchell et al28: QTc=QT/(RR/100)1/2, where the RR interval was determined automatically by the software by averaging individual RR intervals for the 30-second period.

    Statistical Analysis

    All results are presented as mean±SEM. Statistical comparisons between groups were performed by a 1-way ANOVA, followed by a Newman-Keuls test. For the ECG interval durations, a 2-way ANOVA was used to statistically evaluate differences between genotypes and treatments. P<0.05 was considered the minimal level of significance. Statistical analyses were performed with the PRISM statistical software package.

    Results

    Characteristics of DOCA/Salt Mice

    Untreated, 1eC and 2eCrenin-gene mice were not different from control, uninephrectomized mice that received tap water, in terms of body weight, BP, serum Na+ level, HR, and cardiac weight. Baseline plasma renin activity was 3.9±0.4 ng · mLeC1 · heC1, BP was 121±2 mm Hg, cardiac weight was 111±1 mg, and serum K+ was 4.9±0.1 mmol/L in untreated 1eCrenin gene mice (n=13). In untreated, 2eCrenin gene mice, plasma renin activity was 25.6±1.2 ng · mLeC1 · heC1, (n=11, P<0.01 vs 1eCrenin gene), BP was 141±3 mm Hg (P<0.01 vs 1eCrenin gene), cardiac weight was 125±4 mg (P<0.01 vs 1eCrenin gene), and serum K+ was 4.9±0.1 mmol/L. These values were comparable to those measured in control, uninephrectomized, tap watereCdrinking mice (data not shown, see Wang et al24). The only difference was kidney size because of the uninephrectomy and the compensatory growth of the remaining kidney.

    After 5 weeks of DOCA/salt administration, both 1eC and 2eCrenin gene mice developed hypokalemia, with a serum K+ value decreasing from 4.7±0.1 (control mice) to 2.8±0.1 mmol/L with DOCA/salt (P<0.01) in 1eCrenin gene mice and from 4.8±0.2 (control mice) to 3.3±0.1 mmol/L (P<0.01) in 2eCrenin gene, DOCA/salt mice (Figure 1). In parallel, metabolic alkalosis developed because blood pH rose from 7.27±0.02 to 7.44±0.02 and from 7.23±0.02 to 7.39±0.03 in 1eC (P<0.01) and 2eC (P<0.01) renin gene mice, respectively (Table 1). In 1eCrenin gene, DOCA/salt-treated mice, BP did not increase when compared with the control group (111±2 vs 112±3 mm Hg, P=NS; Figure 2), whereas in 2eCrenin gene mice, BP was higher at baseline and increased significantly from 142±3 to 167±3 mm Hg, (P<0.01) with the administration of DOCA/salt (Figure 2). As shown in Figure 3 as well as in Table 1, administration of DOCA/salt induced cardiac and renal hypertrophy, as judged by the marked increases in cardiac and kidney weights (Table 1) and cardiac and kidney weight indices.

    Effect of Potassium Supplementation

    With potassium supplementation (0.4% and 0.6% KCl in the drinking water), urinary K+ excretion increased and the urinary Na+ to K+ ratio decreased dose-dependently (P<0.01, Table 1). Serum K+ increased significantly and dose-dependently and reached normal values both in 1eC and 2eCrenin gene mice when compared with control mice and mice that received DOCA/salt treatment only (P<0.01; Figure 1). Similarly, blood pH was normalized with administration of the potassium supplement (P<0.01, Table 1). In 2eCrenin gene mice, potassium supplementation induced a significant decrease in mean BP, from 167±3 mm Hg (DOCA/salt) to 157±4 mm Hg on a 0.4% KCl diet and to 142±7 mm Hg on a 0.6% KCl diet (P<0.05, Figure 2). In 1eCrenin gene mice, potassium supplementation completely reversed DOCA/salt-induced cardiac hypertrophy with no change in BP (Figures 2 and 3). Furthermore, the decrease in BP and the correction of kalemia in 2eCrenin gene mice was also associated with a significant decrease in cardiac hypertrophy (Figure 3). Nevertheless, even with the 0.6% KCl supplement, cardiac weight index remained greater than that in control mice. In contrast to cardiac weight, kidney weight decreased but was not normalized by potassium supplementation, and this finding was independent of the renin gene background (Figure 3). As shown in Table 2, significant correlations were found between serum K+ and plasma pH and cardiac and renal indices. Of note, BP was correlated with cardiac and renal indices in 2eCrenin-gene mice only.

    Effect of Potassium Supplementation on Cardiac Contractility

    Cardiac function was measured in the conscious state in all groups (Table 3). LVEDP was elevated in both DOCA/salt-treated 1eC and 2eCrenin gene mice but was significantly higher in 2eCrenin gene mice (P<0.01). Accordingly, LVdP/dtmin (mm Hg/s) was significantly reduced and Weiss , the relaxation time constant, was prolonged in DOCA/salt-treated mice compared with controls (P<0.01, Table 3). In addition, LVdP/dtmax was significantly decreased in 1eCrenin gene, DOCA/salt mice compared with control mice, whereas no difference was found in 2eCrenin gene mice (Table 3). HR was comparable in all groups.

    In 1eCrenin gene mice, all functional cardiac parameters were restored by potassium supplementation. Importantly, BP, left ventricular systolic pressure, nor HR was modified by the potassium diet (Table 3). In contrast, in 2eCrenin gene, DOCA/salt mice, potassium supplementation significantly lowered BP and left ventricular systolic pressure, but LVdP/dtmax was unaffected (P>0.05, Table 3). However, LVdP/dtmin, LVEDP, and were also normalized with potassium supplementation in DOCA/salt, 2eCrenin gene mice.

    ECG Changes in DOCA/Salt Mice

    Under 1% halothane anesthesia, 2eCrenin gene mice had a significantly higher HR and hence, shorter RR, P, PR, QT, and QRS interval durations than did 1eCrenin gene mice. Comparisons between DOCA/salt and control mice showed that PR, QT, and QTc intervals were significantly prolonged in treated mice relative to tap watereCtreated mice (Table 4). This effect was observed in both 1eC and 2eCrenin gene mice. Potassium supplementation completely prevented PR, QT, and QTc prolongation in both mouse strains.

    In DOCA/salt mice, a long QT-interval duration was associated with a higher incidence of arrhythmogenic events (Figure 4). In these mice, ECG measurements demonstrated the presence of 2 major forms of triggered activity: irregular occurrence of premature atrioventricular depolarizations (Figure 4B) and premature ventricular depolarizations dissociated from the supraventricular rhythm every third beat (Figure 4D). Triggered activity was observed in 6 of 8 mice in the 1eCrenin gene group (ie, 75% vs 0% for mice offered tap water, P<0.05) and in 5 of 8 animals in the 2eCrenin gene group (ie, 60% vs 0% for mice offered tap water, P<0.05). The 2 forms of triggered activity were not observed concomitantly. Potassium supplementation completely prevented the development of arrhythmias in both 1eC and 2eCrenin gene mice (Figure 4C and 4F).

    Discussion

    Hypokalemia is known to have deleterious effects on the cardiovascular and renal systems.1 The presence of hypokalemia in hypermineralocorticoid states has been shown repeatedly to affect both cardiac structure, leading to myocardial necrosis or fibrosis, and myocardial function, resulting in impaired cardiac contractility and ventricular arrhythmias.12,13,23eC25 However, whether hypokalemia contributes to the development of cardiac hypertrophy independent of BP has not clearly been demonstrated. The results of the present experiments show that potassium supplementation prevents the development of cardiac hypertrophy independent of BP in normotensive, 1eCrenin gene mice receiving excess mineralocorticoid and salt. In hypertensive, 2eCrenin gene mice, potassium supplementation also prevents the development of cardiac hypertrophy. In this case, however, because potassium supplementation results in significantly lower BP in DOCA/salt-treated animals, the beneficial effects of potassium cannot be separated from the decrease in BP. Our data also show that potassium supplementation has a greater effect on cardiac than on renal hypertrophy. Moreover, potassium supplementation corrects metabolic alkalosis in this model, which could also affect the development of cardiac hypertrophy. Finally, correction of hypokalemia improves cardiac function and decreases the incidence of arrhythmias.

    The main observation of the present experiment comes from the results obtained in 1eCrenin gene mice. We have previously shown that these mice develop hypokalemia, metabolic alkalosis, cardiac and renal hypertrophy, and cardiac dysfunction in the absence of hypertension when receiving DOCA and salt.24,25 The mechanisms whereby these animals develop cardiac and renal hypertrophy have not been clearly established. Cardiac hypertrophy is associated with an upregulation of angiotensin II AT1 receptors, and the hypertrophy is partially reversible during AT1 receptor blockade with losartan.24 Even though plasma K+ levels were not changed by losartan, one cannot exclude the possibility that the potassium-retaining properties of AT1 receptor antagonists could have played a role in the regression of hypertrophy. Small, transient changes in BP in response to DOCA/salt were excluded by measuring BP continuously for several days by telemetry (data not shown). The present data demonstrate that hypokalemia and metabolic alkalosis likely play a role in the pathophysiology of cardiac hypertrophy and dysfunction in this model. As mentioned earlier, correction of hypokalemia is more effective in the heart than the kidney, suggesting that other mechanisms might be involved in the development of renal hypertrophy during mineralocorticoid exposure.

    As described previously, 2eCrenin gene mice have a 10-fold higher plasma renin activity and a 100-fold higher plasma renin concentration than 1eCrenin gene animals.24 Hence, these mice have high BP at baseline (140 mm Hg vs 120 mm Hg in 1eCrenin gene mice), are salt-sensitive, and develop hypokalemia and metabolic alkalosis associated with cardiac and renal hypertrophy on administration of DOCA/salt. In contrast to 1eCrenin gene mice, the cardiac and renal hypertrophic response in 2eCrenin gene animals appears to depend on BP.24 In the present study, these initial observations were reproduced, indicating that BP indeed plays an important role in the pathology of this model. Interestingly, a significantly lower BP was measured in potassium-supplemented, DOCA/salt, 2eCrenin gene mice. Along these lines, potassium supplementation was reported earlier to be beneficial in stroke-prone spontaneously hypertensive and in Dahl salt-sensitive rats via reduction of BP.16,17,29 Nonetheless, in the 2eCrenin gene model, correction of plasma K+ values and metabolic alkalosis also appears to contribute to the prevention of left ventricular and renal hypertrophy, as indicated by the significant correlations obtained between serum K+ levels or blood pH and cardiac and renal weight indices (Table 2). One limitation of the study is the rather short duration of potassium supplementation. Thus, we cannot exclude the possibility that prolonged potassium supplementation would have resulted in greater benefit. With time, the beneficial effect of potassium may also be overcome by the effect of high salt intake and mineralocorticoid excess.

    Except for the decrease in BP observed in 2eCrenin gene mice, our experiments do not provide any clear explanation as to why potassium supplementation prevents the development of cardiac hypertrophy. However, several mechanisms could be involved. Thus, in vitro studies of neonatal cardiac myocyte cultures have shown that moderate to severe reductions in K+ concentrations (from 5.3 to 1.0 mmol/L) in media produce molecular phenotypic alterations consistent with cardiac hypertrophy, such as upregulation of atrial natriuretic peptide and skeletal actin (SKA) upregulation.30 This observation is concordant with our previous finding that cardiac -SKA is upregulated in DOCA/salt-treated mice.24 Potassium has also been shown in vitro to inhibit the proliferation of vascular smooth muscle cells and has been reported to improve endothelial function, 2 effects that may also contribute to the benefits of potassium supplementation.31,32 Potassium supplementation may correct a DOCA/salt-induced imbalance of intracellular electrolytes, including K+, Na+, and Ca2+, which are important in mediating cardiac hypertrophy and contractility.33 Recent studies have suggested that the Na+/H+ exchange (NHE) system plays an important role in cardiac remodeling after myocardial infarction and may contribute to the development of cardiac hypertrophy induced by several hormonal pathways, including angiotensin II, endothelin-1, and -adrenergic stimulation.34eC36 More recently, aldosterone has been reported to stimulate NHE-1 activity in vascular smooth muscle cells, thereby elevating intracellular pH by a nongenomic, protein kinase CeCdependent mechanism.37 Whether changes in serum K+ or extracellular pH play a role in NHE activity and thereby influence the cardiac hypertrophic response observed in the DOCA/salt model has, to our knowledge, not been demonstrated so far but could be postulated. Finally, potassium may also have a direct effect on the cardiac renin-angiotensin system and hence, reduce cardiac hypertrophy. In this respect, we have reported previously that an angiotensin II receptor antagonist decreases cardiac hypertrophy in both 1eC and 2eCrenin gene mice receiving DOCA/salt, even though the circulating activity of the renin-angiotensin system was low in 1eCrenin gene mice.

    The present study also demonstrates that DOCA/salt treatment induces modifications in cardiac electrical activity in 1eC and 2eCrenin gene mice (ie, increased arrhythmogenic activity and prolongation of PR and QTc intervals). Potassium supplementation completely prevents these changes, suggesting that hypokalemia is sufficient and necessary to induce these electrical modifications in DOCA/salt mice. At this stage, it could be speculated that hypokalemia would impair cardiomyocyte repolarization, leading to a prolongation of action potential duration and delayed afterdepolarizations.38 A larger-amplitude afterdepolarization would increase the likelihood of reaching threshold for triggering a potentially arrhythmogenic action potential.39 An increased Na+/Ca2+ exchanger activity during the repolarization phase could also prolong action potential duration and provide more transient inward current for any given sarcoplasmic reticulum calcium release. These hypotheses require further investigation.

    Perspectives

    Taken together, the results of the present study provide evidence that hypokalemia and metabolic alkalosis contribute to the development of cardiac and renal hypertrophy and cardiac dysfunction under conditions of mineralocorticoid and salt excess. Correction of hypokalemia and metabolic alkalosis by dietary potassium supplementation prevents DOCA/salt-induced cardiac hypertrophy and left ventricular dysfunction. This observation may be very clinically relevant. Indeed, hypokalemia and metabolic alkalosis are the hallmarks of excess mineralocorticoids, but hypokalemia is also a common complication of diuretic use. Epidemiological studies have suggested that patients who develop hypokalemia do not benefit entirely from administration of a diuretic.40 Moreover, K+-sparing drugs, like blockers of the renin-angiotensin system and antialdosterone agents, have been shown to be very effective in reducing left ventricular hypertrophy.41eC43 Thus, greater clinical attention to K+ balance and in particular to hypokalemia may be an effective approach to reduce cardiovascular events by preventing left ventricular hypertrophy, a known independent risk factor for cardiovascular complications.

    Acknowledgments

    The present study was partly financed by the Swiss Cardiovascular Research and Training Network (Q.W. and A.D.) and the Fonds National Suisse de la Recherche Scientifique (grant No. 3100A0-103629 to M.B. and grant No. 32-00B0-102154/1 to T.P.).

    References

    Coca SG, Perazella MA, Buller GK. The cardiovascular implications of hypokalemia. Am J Kidney Dis. 2005; 45: 233eC247.

    Tobian L. Potassium and hypertension. Nutr Rev. 1988; 46: 273eC283.

    Packer M. Potential role of potassium as a determinant of morbidity and mortality in patients with systemic hypertension and congestive heart failure. Am J Cardiol. 1990; 65: 45EeC51E.

    Laragh JH, Sealey JE. K+ depletion and the progression of hypertensive disease or heart failure: the pathogenic role of diuretic-induced aldosterone secretion. Hypertension. 2001; 37: 806eC810.

    Green DM, Ropper AH, Kronmal RA, Psaty BM, Burke GL. Serum potassium level and dietary potassium intake as risk factors for stroke. Neurology. 2002; 59: 314eC320.

    Ray PE, Suga S, Liu XH, Huang X, Johnson RJ. Chronic potassium depletion induces renal injury, salt sensitivity, and hypertension in young rats. Kidney Int. 2001; 59: 1850eC1858.

    He FJ, MacGregor GA. Beneficial effects of potassium: clinical review. BMJ. 2001; 323: 497eC501.

    Fitzovich DE, Hamaguchi M, Tull WB, Young DB. Chronic hypokalemia and the left ventricular responses to epinephrine and preload. J Am Coll Cardiol. 1991; 18: 1105eC1111.

    Srivastava N, Young DB. Moderate potassium depletion impairs diastolic function. J Cardiac Failure. 1995; 1: 195eC200.

    Tepper SH, Anderson PA, Mergner WJ. Recovery of heart tissue following focal injury induced by dietary restriction of potassium. Pathol Res Pract. 1990; 186: 265eC282.

    Darrow DC, Miller HC. The production of cardiac lesions by repeated injections of desoxycorticosterone acetate. J Clin Invest. 1942; 21: 601eC611.

    Brilla CG, Weber KT. Mineralocorticoid excess, dietary sodium, and myocardial fibrosis. J Lab Clin Med. 1992; 120: 893eC901.

    Young M, Fullerton M, Dilley R, Funder J. Mineralocorticoids, hypertension, and cardiac fibrosis. J Clin Invest. 1994; 93: 2578eC2583.

    Volpe M, Camargo MJF, Muller FB, Campbell WG Jr, Sealey JE, Pecker MS, Sosa RE, Laragh JH. Relation of plasma renin to end organ damage and to protection of K+ feeding in stroke-prone hypertensive rats. Hypertension. 1990; 15: 318eC326.

    Young DB, Lin H, McCabe RD. Potassium’s cardiovascular protective mechanisms. Am J Physiol. 1995; 268 (pt 2): R825eCR837.

    Workman ML, Paller MS. Cardiovascular and endocrine effects of potassium in spontaneously hypertensive rats. Am J Physiol. 1965; 5: H907eCH913.

    Tobian L, Lange J, Ulm K, Wold L, Iwai J. Potassium reduces cerebral hemorrhage and death rate in hypertensive rats, even when blood pressure is not lowered. Hypertension. 1985; 7 (suppl I): I-110eCI-114.

    Cappuccio FP, MacGregor GA. Does potassium supplementation lower blood pressure a meta-analysis of published trials. J Hypertens. 1991; 9: 465eC473.

    Whelton PK, He J, Cutler JA, Brancati FL, Appel LJ, Follmann D, Klag MJ. Effects of oral potassium on blood pressure: meta-analysis of randomized controlled clinical trials. JAMA. 1997; 277: 1624eC1632.

    Ellis D, Banner B, Janosky JE, Feig PU. Potassium supplementation attenuates experimental hypertensive renal injury. J Am Soc Nephrol. 1992; 10: 1529eC1537.

    Tobian L, MacNeill D, Johnson MA, Ganguli MC, Iwai J. Potassium protection against lesions of the renal tubules, arteries, and glomeruli and nephron loss in salt loaded hypertensive Dahl S rats. Hypertension. 1984; 6 (suppl I): I-170eCI-176.

    Robert V, Van Thiem N, Cheav SL, Mouas C, Swynghedauw B, Delcayre C. Increased cardiac types I and III collagen mRNAs in aldosterone-salt hypertension. Hypertension. 1994; 24: 30eC36.

    Young M, Head G, Funder J. Determinants of cardiac fibrosis in experimental hypermineralocorticoid states. Am J Physiol. 1995; 269: E657eCE662.

    Wang Q, Hummler E, Nussberger J, Cleement S, Gabbiani G, Brunner HR, Burnier M. Blood pressure, cardiac, and renal responses to salt and deoxycorticosterone acetate in mice: role of renin genes. J Am Soc Nephrol. 2002; 13: 1509eC1516.

    Wang Q, Brunner HR, Burnier M. Determination of cardiac contractility in awake unsedated mice with a fluid-filled catheter. Am J Physiol Heart Circ Physiol. 2004; 286: H806eCH814.

    Grouzman E, Cavadas C, Grand D, Moratel M, Aubert JF, Brunner HR, Mazzolai L. Blood sampling methodology is crucial for precise measurement of plasma catecholamines concentrations in mice. Pflugers Arch Eur J Physiol. 2003; 447: 254eC258.

    Royer A, van Veen TA, Le Bouter S, Marionneau C, Griol-Charhbili V, Leoni AL, Steenman M, van Rijen HV, Demolombe S, Goddard CA, Richer C, Escoubet B, Jarry-Guichard T, Colledge WH, Gros D, de Bakker JM, Grace AA, Escande D, Charpentier F. Mouse model of SCN5A-linked hereditary Lenegre’s disease: age-related conduction slowing and myocardial fibrosis. Circulation. 2005; 111: 1738eC1746.

    Mitchell GF, Jeron A, Koren G. Measurement of heart rate and Q-T interval in the conscious mouse. Am J Physiol. 1998; 274: H747eCH751.

    Zhou MS, Nishida Y, Yoneyama H, Chen QH, Kosaka H. Potassium supplementation increases sodium excretion and nitric oxide production in hypertensive Dahl rats. Clin Exp Hypertens. 1999; 21: 1397eC1411.

    Xie Z, Liu J, Malhotra D, Sheridan T, Periyasamy SM, Shapiro JI. Effects of hypokalemia on cardiac growth. Renal Failure. 2000; 22: 561eC572.

    McCabe RD, Young DB. Potassium inhibits cultured vascular smooth muscle proliferation. Am J Hypertens. 1994; 7: 346eC350.

    Ishimitsu T, Tobian L. High potassium diets reduce endothelial permeability in stroke-prone spontaneously hypertensive rats. Clin Exp Pharmacol Physiol. 1996; 23: 241eC245.

    Pogwizd SM, Sipido KR, Verdonck F, Bers DM. Intracellular Na in animal models of hypertrophy and heart failure: contractile function and arrhythmogenesis. Cardiovasc Res. 2003; 57: 887eC896.

    Young M, Funder J. Mineralocorticoid action and sodium-hydrogen exchange: studies in experimental cardiac fibrosis. Endocrinology. 2003; 144: 3848eC3851.

    Karmazyn M, Gan XT, Humphreys RA, Yoshida H, Kusumoto K. The myocardial Na+-H+ exchange: structure, regulation, and its role in heart disease. Circ Res. 1999; 85: 777eC786.

    Chen L, Chen CX, Gan XT, Beier N, Scholtz W, Karmazyn M. Inhibition and reversal of myocardial infarction-induced hypertrophy and heart failure by NHE-1 inhibition. Am J Physiol Heart Circ Physiol. 2003; 286: H381eCH387.

    Wheling M. Aldosterone specific membrane receptors, rapid activation of the sodium-hydrogen exchanger, and cardiovascular implications. Cardiovasc Res. 1995; 29: 167eC171.

    Tomaselli GF, Marban E. Electrophysiological remodeling in hypertrophy and heart failure. Cardiovasc Res. 1999; 42: 270eC283.

    Pogwizd SM, Bers DM. Cellular basis of triggered arrhythmias in heart failure. Trends Cardiovasc Med. 2004; 14: 61eC66.

    Delpe E, Caballero R, Geez R, Nez L, Tamargo J. Angiotensin II, angiotensin II antagonists and spironolactone and their modulation of cardiac repolarization. Trends Pharmacol Science. 2005; 26: 155eC161.

    Franse LV, Pahor M, Di Bari M, Somes GW, Cushman WC, Applegate WB. Hypokalemia associated with diuretic use and cardiovascular events in the Systolic Hypertension in the Elderly Program. Hypertension. 2000; 35: 1025eC1030.

    Dahlf B, Devereux RB, Kjeldsen SE, Julius S, Beevers G, Faire U, Fyhrquist F, Ibsen H, Kristiansson K, Lederballe-Pedersen O, Lindholm LH, Nieminen MS, Omvik P, Oparil S, Wedel H. Cardiovascular morbidity and mortality in the Losartan Intervention For Endpoint reduction in hypertension study (LIFE): a randomized trial against atenolol. Lancet. 2002; 359: 995eC1003.

    Pitt B, Reichek N, Willenbrock R, Zannad F, Phillips RA, Roniker B, Kleiman J, Krause S, Burns D, Williams GH. Effects of eplerenone, enalapril, and eplerenone/enalapril in patients with essential hypertension and left ventricular hypertrophy; the 4E-Left Ventricular Hypertrophy Study. Circulation. 2003; 108: 1831eC1838., 百拇医药(Qing Wang; Andrea A. Dome)