Magnesium deficiency: a cause of heterogeneous disease in humans.
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Biomedical subjects
Publications and source records attributed to R K Rude.
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Eleven femurs with press-fit titanium hip components were retrieved at autopsy for clinical, radiographic, and histologic evaluation. Back-scattered electron microscopy (BEM), bone densitometry, and appositional bone index studies also were performed. The average patient age was 87 years; the average time in situ was 22 months (range: 2 to 60). All patients were functioning well and pain free. Radiographs and bone mineral density studies (BMD) showed mild proximal stress shielding in five cases. No cases of osteolysis or pedestal formation were observed. Histologic sections revealed an average of 26% bone-prosthesis contact. Bone surrounding the prosthesis appeared viable, and osteoclastic activity in the interfacial bone was minimal; the presence of macrophages and inflammatory cells was rare. The appositional bone index averaged 40%. Bone-prosthesis contact was seen consistently at the corners of the component in the multiple regions, mostly were prosthesis-endosteal cortical contact was made. BEM demonstrated intimate contact of bone with the rough titanium surface. Bone mineral density was lower in the lesser trochanter and medial proximal regions of the implanted femur than in the contralateral femur. Evidence of bone on-growth fixation in 11 femoral components suggests that cementless, stable bone fixation may be achievable in senior individuals and that "complete fit and fill," porous-coated, cementless prostheses may not be required for prosthesis stability.
Leptin, the obese (ob) gene product, is thought to be a lipostatic hormone that contributes to body weight regulation through modulating feeding behavior and/or energy expenditure. The determinants of plasma leptin concentration were evaluated in 267 subjects (106 with normal glucose tolerance, 102 with impaired glucose tolerance, and 59 with noninsulin-dependent diabetes). Fasting plasma leptin levels ranged from 1.8-79.6 ng/mL (geometric mean, 12.4), were higher in the obese subjects, and were not related to glucose tolerance. Women had approximately 40% higher leptin levels than men at any level of adiposity. After controlling for body fat, postmenopausal women had still higher leptin levels than men of similar age, and their levels were not different from those in younger women. Multiple regression analysis showed that adiposity, gender, and insulinemia were significant determinants of leptin concentration, explaining 42%, 28%, and 2% of its variance, respectively. Neither age nor the waist/hip ratio was significantly related to leptin concentration. Thus, our data indicate that gender is a major determinant of the plasma leptin concentration. This sex difference is not apparently explained by sex hormones or body fat distribution. Leptin's sexual dimorphism suggests that women may be resistant to its putative lipostatic actions and that it may have a reproductive function.
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Osteoporosis and magnesium (Mg) deficiency often occur in malabsorption syndromes such as gluten-sensitive enteropathy (GSE). Mg deficiency is known to impair parathyroid hormone (PTH) secretion and action in humans and will result in osteopenia and increased skeletal fragility in animal models. We hypothesize that Mg depletion may contribute to the osteoporosis associated with malabsorption. It was our objective to determine Mg status and bone mass in GSE patients who were clinically asymptomatic and on a stable gluten-free diet, as well as their response to Mg therapy. Twenty-three patients with biopsy-proven GSE on a gluten-free diet were assessed for Mg deficiency by determination of the serum Mg, red blood cell (RBC) and lymphocyte free Mg2+, and total lymphocyte Mg. Fourteen subjects completed a 3-month treatment period in which they were given 504-576 mg MgCl2 or Mg lactate daily. Serum PTH, 25-hydroxyvitamin D, 1,25-dihydroxyvitamin D and osteocalcin were measured at baseline and monthly thereafter. Eight patients who had documented Mg depletion (RBC Mg2+ < 150 microM) underwent bone density measurements of the lumbar spine and proximal femur, and 5 of these patients were followed for 2 years on Mg therapy. The mean serum Mg, calcium, phosphorus and alkaline phosphatase concentrations were in the normal range. Most serum calcium values fell below mean normal and the baseline serum PTH was high normal or slightly elevated in 7 of the 14 subjects who completed the 3-month treatment period. No correlation with the serum calcium was noted, however. Mean serum 25-hydroxyvitamin D, 1,25-dihydroxyvitamin D and osteocalcin concentrations were also normal. Despite only 1 patient having hypomagnesemia, the RBC Mg2+ (153 +/- 6.2 microM; mean +/- SEM) and lymphocyte Mg2+ (182 +/- 5.5 microM) were significantly lower than normal (202 +/- 6.0 microM, p < 0.001, and 198 +/- 6.8 microM, p < 0.05, respectively). Bone densitometry revealed that 4 of 8 patients had osteoporosis of the lumbar spine and 5 of 8 had osteoporosis of the proximal femur (T-scores < or = -2.5). Mg therapy resulted in a significant rise in the mean serum PTH concentration from 44.6 +/- 3.6 pg/ml to 55.9 +/- 5.6 pg/ml (p < 0.05). In the 5 patients given Mg supplements for 2 years, a significant increased in bone mineral density was observed in the femoral neck and total proximal femur. This increase in bone mineral density correlated positively with a rise in RBC Mg2+. This study demonstrates that GSE patients have reduction in intracellular free Mg2+, despite being clinically asymptomatic on a gluten-free diet. Bone mass also appears to be reduced. Mg therapy resulted in a rise in PTH, suggesting that the intracellular Mg deficit was impairing PTH secretion in these patients. The increase in bone density in response to Mg therapy suggests that Mg depletion may be one factor contributing to osteoporosis in GSE.
The working group on magnesium considered a number of issues relevant to establishing allowances and to providing other pertinent information on this ion for the next edition of the Recommended Dietary Allowances (RDA). An accurate and specific marker for assessing the importance of magnesium nutriture in health and disease remains to be identified. Thus, it is unknown whether marginal magnesium depletion results in a disease. Although it is apparent that abnormal serum concentrations are unusual and obvious signs of acute depletion of magnesium are absent in the U.S. populace, one cannot assume that the associated cellular and intracellular pool sizes are optimal for health. There is a need for systematic studies of these and other parameters in healthy individuals with controlled intakes and during depletion. To address the question of how magnesium allowances should be set, previous editions of the RDA that included magnesium were reviewed; this review indicated the need for the adoption of objective criteria for acceptance of published balance studies and the inclusion in the discussion of an analysis of the balance studies and the specific calculations used in establishing the RDA. Such criteria and evaluations should be placed in a technical addendum to allow readers to evaluate the data. It is recommended that future RDA Committees consider expressing metabolic balance data on a basis other than weight, e.g., energy expenditure, lean body mass or body cell mass. Claims that magnesium nutriture has a role in preventing or ameliorating chronic disease such as heart disease and hypertension need to be critically evaluated if they are to be used to set the next RDA. The pharmacologic effects of magnesium are significant and need to be recognized. Because excess oral magnesium can be toxic to persons with advanced renal disease, more attention should be given to this topic by future RDA Committees.
Primary hyperparathyroidism is the most prevalent cause of hypercalcemia. Although renal stone disease and osteitis fibrosis were prominent complications of this disorder in the past, the advent of biochemical screening has resulted in earlier detection. This has changed the clinical presentation of primary hyperparathyroidism, so that as many as 80% of patients do not have any sign or symptom that can be attributed solely to the disease. Improvement in assays for PTH has allowed for accurate bio-chemical diagnosis in over 90% of cases. Neck exploration is the treatment of choice for any patient who presents with signs, symptoms, or complications of hypercalcemia or hyperparathyroidism. Medical therapy is indicated in patients who either cannot undergo surgery because of medical contraindication, failed prior neck surgery, unresectable parathyroid carcinoma or simply refuse surgery. Medical therapy is not optimal, although sex steroid replacement therapy in the postmenopausal woman has met with some success. Calcitonin, phosphate, and bisphosphonates may be used, but their long-term efficacy is not clear. Recent studies have suggested that a large proportion of patients with asymptomatic primary hyperparathyroidism do not demonstrate progression of disease in terms of renal dysfunction, bone disease, or biochemical changes in calcium or PTH. Guidelines have been established for medical follow-up of such patients. If any such patient develops signs or symptoms during medical follow-up, surgery is then indicated.
In vitro, 1,25-dihydroxyvitamin D3 (1,25(OH)2D3) induces differentiation of HL-60 cells and inhibits their proliferation as well as the proliferation of leukemic cells from patients. In vivo, the survival of mice challenged with syngeneic leukemic cells is enhanced by treatment with 1,25(OH)2D3. Patients treated with 1,25(OH)2D3 develop hypercalcemia at a serum level of 2 x 10(-10) mol/l which is a concentration too low to achieve an antileukemic effect in vitro. Several interesting vitamin D3 analogs have recently been developed. We initially examined the effect of 1,25(OH)2-16ene-23yne-19-nor-26,27-F6-D3 and 24a,26a,27a-tri-homo-22,24-diene-1-alpha,25-(OH)2-D3 on clonal growth and differentiation of HL-60 cells. Each of the analogs had comparable effects on clonal growth with 50% inhibition (ED50) at concentrations of 0.2-0.5 x 10(-9) M; 1,25(OH)2D3 was about 20- to 50-fold less active in inhibiting growth. Differentiation was determined by induction of superoxide production, as measured by nitroblue tetrazolium (NBT) reduction and by expression of a macrophage-specific enzyme (alpha napthyl acetate esterase (ANAE)). The 24a,26a,27a-tri-homo-22,24-diene-1-alpha,25-(OH)2-D3 and 1,25(OH)2-16ene-23yne-19-nor-26,27-F6-D3 were about 5- to 14-fold more potent than 1,25(OH)2D3. The hypercalcemia inducing side-effects of these analogs and three other previously identified, extremely potent vitamin D3 compounds, as well as 1,25(OH)2D3, were studied. The analogs were administered intraperitoneally every other day (qod) for 5 weeks; serum was collected weekly and Ca2+ measured by atomic absorption spectrophotometry. The highest tolerated dose of each analog leaving all mice alive was for 1,25(OH)2D3: 0.25 micrograms; 1,25(OH)2-24a,26a,27a-tri-homo-22,24-diene-D3: 0.25 micrograms; and 1,25(OH)2-16ene-23yne-19-nor-26,27-F6-D3: 0.0625 micrograms. Another hexafluoro compound with potent abilities to induce differentiation (1,25(OH)2-16ene-23yne-26,27-F6-D3) was very toxic, all mice died in the second week while receiving 0.0625 micrograms qod. Prior studies showed that the most potent compound in inducing differentiation of HL-60 was 1,25(OH)2-20-epi-D3; but it is very toxic as only one mouse survived a dose of > or = 0.0125 micrograms qod for 5 weeks. 1,25(OH)2-16ene-23yne-D3 is an extremely active inducer of differentiation but, on the other hand, it has low potential to produce hypercalcemia; mice maintained normal serum calcium levels even while receiving 2 micrograms qod for 5 weeks.(ABSTRACT TRUNCATED AT 400 WORDS)
To examine potential mechanisms for the blood pressure-lowering action of the thiazolidinedione compound, pioglitazone (PIO), we studied the effects of the drug on blood pressure and insulin action in vivo and on vascular tissue in vitro. In vivo, PIO lowered blood pressure in fructose-fed and chow-fed rats to an extent that could not be explained by alterations in fasting plasma insulin or free magnesium concentrations or by alterations in whole-body insulin sensitivity. In vitro, PIO caused significant blunting of the contractile responses of aortic rings to NE, arginine vasopressin (AVP), and potassium chloride; the blunting of responses to NE was maintained after removal of the endothelium. To assess the potential importance of extracellular calcium to the vasodepressor effect of PIO, we measured contractile responses to NE in the absence of calcium, and then after acute restoration of calcium in the presence of NE. PIO had no effect on the contractile response in the absence of calcium. By contrast, PIO blunted by 42% the contractile response that occurred when the extracellular calcium supply was acutely restored in the presence of NE, suggesting that the blunting was mediated by blockade of calcium uptake by vascular smooth muscle. Such an effect was confirmed in cultured a7r5 vascular smooth muscle cells, which exhibited a brisk increase in intracellular calcium in response to AVP that was blocked by PIO in a dose-dependent fashion. Our data indicate that PIO has a direct vascular effect that appears to be mediated at least in part by inhibition of agonist-mediated calcium uptake by vascular smooth muscle. The direct vascular effect may contribute to the blood pressure-lowering actions of PIO in vivo, because that effect could not be explained by alterations in whole-body insulin sensitivity.
Magnesium depletion is more common than previously thought. It seems to be especially prevalent in patients with diabetes mellitus. It is usually caused by losses from the kidney or gastrointestinal tract. A patient with magnesium depletion may present with neuromuscular symptoms, hypokalemia, hypocalcemia, or cardiovascular complication. Physicians should maintain a high index of suspicion for magnesium depletion in patients at high risk and should implement therapy early.
Diabetes mellitus may be associated with magnesium depletion, which in turn may contribute to metabolic complications of diabetes including vascular disease and osteoporosis. Intracellular depletion is thought to be due to osmotically induced renal magnesium loss; however, impaired ability of insulin to increase intracellular magnesium during insulin deficiency or insulin resistance could also play a role. Magnesium deficiency per se has also been reported to result in insulin resistance. In order to determine if magnesium transport is altered in non-insulin-dependent diabetes mellitus (NIDDM), we measured intracellular Mg(2+) in circulating lymphocytes obtained from nine normal subjects and seven patients with NIDDM. Ionized intracellular Mg(2+) was determined by fluorescent spectroscopy using Mg-fura-2. A 30 min incubation of insulin with lymphocytes obtained from normal subjects resulted in an increase in Mg(2+) of 8.6 +/- 3.6 percent (mean +/- SEM) at 100 mu U/ml which reached a plateau at approximately 250 mu U/ml (11.0 +/- 1.7 percent). The mean lymphocyte Mg(2+) in the patients (0.198 +/- 0.011 mM) was not significantly lower than normal (0.218 +/- 0.017). Insulin (500 mU/ml) added acutely during the fluorescence reading caused a rapid 31 +/- 3.9 percent rise in intracellular Mg(2+) in the normal subjects, which was significantly greater than the 18 +/- 1.6 percent rise observed in the NIDDM subjects (P < 0.01). The effect of magnesium deficiency was also studied in 3 normal subjects experimentally Mg deficient for 3 weeks. The mean lymphocyte Mg(2+) fell from 0.198 +/- 0.009 mM pre-diet to 0.153 +/- 0.006 mM post-diet. and the insulin-induced rise in Mg(2+) fell from 27.2 percent pre-magnesium depletion to 12.7 percent post-magnesium depletion. These data suggest that insulin resistance and magnesium depletion may result in a vicious cycle of worsening insulin resistance and decrease in intracellular Mg(2+) which may limit the role of magnesium in vital cellular processes.
BACKGROUND: Hypercalcemia is a serious and common complication of malignancy. Etidronate, a known inhibitor of osteoclastic bone resorption, is approved in the therapy of hypercalcemia of malignancy (HCM) at a dose of 7.5 mg/kg/day infused during a period of 2-4 hours on 3 consecutive days. A multicenter study was conducted to evaluate the safety and efficacy of a single 24-hour infusion of etidronate disodium in patients with HCM. METHODS: Selected patients with HCM had disease refractory to at least 24-hours of intravenous fluid (more than 3 l/day) with two albumin-adjusted serum calcium concentrations greater than 11.5 mg/dl drawn 24 hours apart before etidronate treatment. Thirty patients were enrolled; 13 received 25 mg/kg for 24 hours, 12 received 30 mg/kg for 24-hours, 3 received incorrect doses (2 overdoses, and 1 underdose) and 2 died of disease-related complications before day 7. Of the 25 evaluable patients, 15 were men and 10 were women. Median age was 53 years (range, 20-75 years). Twelve patients (6 in each treatment group) had confirmed skeletal metastases. RESULTS: During the week after treatment, the 25 mg/kg group had adjusted serum calcium levels fall from a mean preinfusion baseline of 13.3 +/- 0.3 mg/dl (plus or minus the standard error of the mean) to a mean nadir of 10.9 +/- 0.4 mg/dl (the average of each patient's lowest calcium values). The 30 mg/kg group had adjusted serum calcium levels fall from a mean preinfusion baseline of 13.8 +/- 0.4 mg/dl to a mean nadir of 10.5 +/- 0.3 mg/dl. The average day that nadir occurred was day 5.7 for the 25 mg/kg group and day 5.6 for the 30 mg/kg group. The mean maximum reduction (delta) derived from the patients' nadirs in the 25 mg/kg dose group was 2.5 +/- 0.4 mg/dl and 3.3 +/- 0.3 mg/dl for the 30 mg/kg dose. Time to effect (either a partial response defined as a 15% or greater decrease in the adjusted serum calcium from the preinfusion value or a complete eucalcemic response defined as a reduction to the laboratory's eucalcemic range) occurred on average on day 4.6 in the 25 mg/kg group and day 3.7 in the 30 mg/kg group. Nine of the 13 (69%) patients in the 25 mg/kg treatment group had either partial or complete response to the 24-hour infusion. Five of these patients (38% of the 13 patients) of the 25 mg/kg group had serum calcium levels fall to their laboratory's eucalcemic range before day 7 (a complete response), 4 (31%) had partial response only, and 4 had no response. In the 30 mg/kg group, 11 of 12 (92%) patients had at least partial responses. Eight of the 12 (67%) patients had adjusted serum calcium concentrations fall to the eucalcemic range by day 7, 3 (25%) had a partial response, and 1 had no response. Reported adverse experiences generally were attributable to the underlying disease. The reduction in the serum calcium throughout the week for the 30 mg/kg dose group was significantly greater than that for the 25 mg/kg group (analysis of variance, P < 0.0001). CONCLUSIONS: Etidronate, when administered intravenously at 30 mg/kg during a period of 24 hours, apparently was safe and effective in this study for treatment of hypercalcemia in patients with a wide variety of tumor types. This regimen may offer a more convenient method of administration than does standard etidronate therapy for the treatment of HCM.
Magnesium (Mg) deficiency occurs frequently in chronic alcoholism and may contribute to the increased incidence of osteoporosis and cardiovascular disease seen in this population. Mg deficiency is primarily due to renal Mg-wasting and is exacerbated by dietary Mg deprivation, gastrointestinal losses with diarrhea or vomiting, as well as concomitant use of drugs such as diuretics and aminoglycosides. Osteoporosis is prevalent in the alcoholic population. Mg deficiency may contribute to increased bone loss by its effects on mineral homeostasis. In Mg depletion, there is often hypocalcemia due to impaired parathyroid hormone (PTH) secretion, as well as renal and skeletal resistance to PTH action. Serum concentrations of 1,25-vitamin D are also low. These changes are seen with even mild degrees of Mg deficiency and may contribute to the metabolic bone disease seen in chronic alcoholics. Hypomagnesemia in alcoholics may also contribute to increased cardiovascular disease by altering platelet function. Mg deficiency has been demonstrated to enhance platelet reactivity. In these studies, Mg was shown to inhibit platelet aggregation against various aggregation agents. Patients with Mg deficiency were shown to have increased platelet aggregation that was normalized with Mg therapy. The antiplatelet effect of Mg may be related to the finding that Mg inhibits the synthesis of thromboxane A2 and 12-hydroxyeicosatetraenoic acid, eicosanoids thought to be involved in platelet aggregation. Mg also inhibits the thrombin-induced Ca2+ influx in platelets, as well as stimulates synthesis of prostaglandin I2, the potent antiaggregatory eicosanoid. Therefore, Mg deficiency may increase platelet aggregation and cause increased hypertension and atherosclerotic cardiovascular disease in alcoholics.
Increased dietary fructose may produce insulin insensitivity and elevate blood pressure in rats. It is possible that the reduced magnesium content of the high-fructose commercial diet used in some studies may play a role in these abnormalities because it is known that magnesium deficiency can produce insulin insensitivity and increased angiotensin II action in humans. To study this, we maintained rats for 9 weeks on either a normal control diet, a standard high-fructose diet, or the same high-fructose diet supplemented with magnesium. Glucose uptake was assessed using a perfused rat hindquarter preparation sequentially with 0, 900, and 120,000 pmol/L of added insulin. Basal serum glucose, plasma insulin, and basal glucose uptake in the absence of insulin were similar among all three groups. However, insulin sensitivity, defined as glucose uptake in the presence of 900 pmol/L insulin minus basal, was depressed in the high-fructose compared with the control group (1.02 +/- 0.38 to 1.77 +/- 0.57 mumol/g per hour, P < .05). In contrast, the high-fructose group supplemented with normal magnesium had similar insulin sensitivity as the control group (2.09 +/- 0.69 mumol/g per hour). Total serum magnesium was reduced in the high-fructose group compared with control or high-fructose plus magnesium-supplemented groups. Blood pressure and fasting insulin levels were also lower in the magnesium-supplemented group. These results suggest that magnesium deficiency and not fructose ingestion per se leads to insulin insensitivity in skeletal muscle and changes in blood pressure.
Magnesium (Mg) deficiency is a common yet underdiagnosed problem in the ICU. Since only 1% of total body Mg is in the extracellular fluid, serum Mg concentrations may not adequately reflect Mg status. Utilizing techniques to measure intracellular Mg concentrations, Mg depletion has been shown to be present in about one half of all ICU patients. These patients have significantly higher morbidity and mortality rates than Mg-replete patients. Accurate identification of patients with Mg depletion requires a knowledge of the risk factors associated with Mg deficiency. These factors include poorly controlled diabetes mellitus, alcohol ingestion, severe diarrhea and steatorrhea, and the use of a number of pharmacologic agents that induce renal Mg wasting. Manifestations of Mg deficiency include hypokalemia, hypocalcemia, neuromuscular hyperexcitability, respiratory muscle weakness, and intractable arrhythmias. Mg deficiency may also play a role in the genesis of myocardial ischemia. In this article, we review the assessment, causes, and manifestations of Mg deficiency and suggest guidelines for adequate treatment.
Magnesium (Mg) is critical for the function of numerous enzyme systems. Mg deficiency thereby may result in many and varied clinical manifestations. Mg deficiency is common as approximately 10% of patients admitted to city hospitals are hypomagnesemic. Mg deficiency is usually due to losses from the gastrointestinal tract or from the kidney. A serum Mg concentration of < 1.5 mEq/l usually indicates Mg deficiency, however, intracellular Mg deletion may be present despite a normal serum Mg concentration. Acute clinical manifestations of Mg deficiency include neuromuscular hyperexcitability, cardiac arrhythmias, and biochemical abnormalities of hypokalemia and hypocalcemia. Chronic Mg depletion may contribute to hypertension, atherosclerotic vascular disease, altered glucose homeostasis, and metabolic bone disease. Therapy of the acute manifestations usually requires parenteral Mg administration of 24-48 mEq Mg/day for 3-5 days. Long-term Mg repletion may be accomplished by the administration of 300-600 mg of Mg orally/day.
Magnesium is a prominent intracellular cation required for the function of hundreds of enzyme systems. Magnesium depletion is observed frequently in hospitalized patients and is usually secondary to renal or intestinal magnesium loss. Clinically, magnesium deficiency may present with neuromuscular hyperexcitability, hypocalcemia, hypokalemia, and cardiac arrhythmias. Magnesium therapy appears to improve survival in patients with myocardial infarction. The diagnosis of magnesium deficiency is usually made by a low-serum magnesium concentration, although the magnesium tolerance test may be more indicative of low magnesium states. In acutely ill patients, magnesium is usually give parenterally; oral magnesium may be given for long-term repletion.
Glucocorticoid excess results in osteoporosis by inhibiting bone formation as well as by increasing bone resorption. The cellular mechanism for the glucocorticoid effect is unknown but has been postulated to be due to enhancement of the cyclic AMP response to PTH. This study examined the effect of in vivo administration of a glucocorticoid on adenylate cyclase activity in plasma membranes isolated from mineralized bone. Glucocorticoid excess was induced by implanting cortisone subcutaneously in adult female guinea pigs. At the end of 3 weeks skeletal plasma membranes were obtained, and adenylate cyclase activity was compared with that of normal age-matched guinea pigs. The specific activity of basal adenylate cyclase activity was significantly greater in the cortisone-treated animals (77.7 +/- 10 vs. 41.9 +/- 4.4 pmol cAMP/mg protein/15 min, p < 0.005), but PTH stimulated both to an equal degree. In contrast to the increased specific activity of intact adenylate cyclase, the specific activity of the catalytic unit was lower in the membranes from cortisone-treated animals. We also examined the effect of cortisone treatment on the modulation of adenylate cyclase by divalent cations. Neither the KaMg or the ability of Ca2+ to inhibit enzyme activity was found to differ between normal and cortisone-treated animals. In addition, PTH caused an increase in Mg2+ affinity in both sets of membranes to a comparable degree. The effect of cortisone could not be attributed to altered amounts of Ni present in these membranes; we were unable to satisfactorily quantitate the amounts of Ns.(ABSTRACT TRUNCATED AT 250 WORDS)