The effect of magnesium deficiency on vitamin D metabolism was assessed in 23 hypocalcemic magnesium-deficient patients by measuring the serum concentrations of 25-hydroxyvitamin D (25OHD) and 1,25-dihydroxyvitamin D [1,25-(OH)2D] before, during, and after 5-13 days of parenteral magnesium therapy. Magnesium therapy raised mean basal serum magnesium [1.0 +/- 0.1 (mean +/- SEM) mg/dl] and calcium levels (7.2 +/- 0.2 mg/dl) into the normal range (2.2 +/- 0.1 and 9.3 +/- 0.1 mg/dl, respectively; P less than 0.001). The mean serum 25OHD concentration was in the low normal range (13.2 +/- 1.5 ng/ml) before magnesium administration and did not significantly change after this therapy (14.8 +/- 1.5 ng/ml). Sixteen of the 23 patients had low serum 1,25-(OH)2D levels (less than 30 pg/ml). After magnesium therapy, only 5 of the patients had a rise in the serum 1,25-(OH)2D concentration into or above the normal range despite elevated levels of serum immunoreactive PTH. An additional normocalcemic hypomagnesemic patient had low 1,25-(OH)2D levels which did not rise after 5 days of magnesium therapy. The serum vitamin D-binding protein concentration, assessed in 11 patients, was low (273 +/- 86 micrograms/ml) before magnesium therapy, but normalized (346 +/- 86 micrograms/ml) after magnesium repletion. No correlation with serum 1,25-(OH)2D levels was found. The functional capacity of vitamin D-binding protein to bind hormone, assessed by the internalization of [3H]1,25-(OH)2D3 by intestinal epithelial cells in the presence of serum was not significantly different from normal (11.42 +/- 1.45 vs. 10.27 +/- 1.27 fmol/2 X 10(6) cells, respectively). These data show that serum 1,25-(OH)2D concentrations are frequently low in patients with magnesium deficiency and may remain low even after 5-13 days of parenteral magnesium administration. The data also suggest that a normal 1,25-(OH)2D level is not required for the PTH-mediated calcemic response to magnesium administration. We conclude that magnesium depletion may impair vitamin D metabolism.
In a prospective, randomized, double-blind, multicenter study, 202 patients with cancer from 19 medical centers were treated for hypercalcemia of malignancy with daily intravenous infusions of etidronate disodium (136 patients) or saline alone (66 patients) for 3 consecutive days. Patients also received up to 3.25 L of saline daily during the treatment period. Of 157 patients for whom data could be evaluated for efficacy, 63% (72/114) of etidronate-treated and 33% (14/43) of saline-treated patients had a normalization of total serum calcium levels. When serum calcium levels were adjusted for albumin (147 assessable patients), 24% of the etidronate- and 7% of the saline-treated patients responded to treatment. No serious side effects or treatment-related deaths occurred. When accompanied by adequate hydration and diuresis, intravenous etidronate was safe and more effective than hydration and diuresis alone in controlling hypercalcemia of malignancy.
We report a case of hypercalcemia in a patient with leprosy. Aminoterminal parathyroid hormone and 25-hydroxy-cholecalciferol concentrations were suppressed. Urinary hydroxyproline concentrations were elevated. There was no evidence of malignancy. The hypercalcemia resolved with corticosteroid therapy.
The treatment of hypercalcemia remains a common problem in the management of many patients with cancer. We have used intravenously administered etidronate disodium as a therapy for hypercalcemia in 26 patients with malignant disease. Patients with persistent hypercalcemia despite adequate hydration and a serum creatinine level less than or equal to 1.5 mg/dL were allowed on study. Treatment consisted of intravenously administered etidronate disodium at 7.5 mg/kg/day in 250 mL of saline infused over two hours on 1, 2, 3, or 4 consecutive days. The serum calcium level in 19 (73%) of 26 patients returned to the normal range with a mean response time of 3 +/- 2 days. Similar response rates were seen in patients with a variety of tumors, including breast cancer, non-small-cell lung cancer, and multiple myeloma. Intravenously administered etidronate appears to be safe and effective therapy for hypercalcemia in patients with malignant disease.
Magnesium deficiency is a common clinical condition, frequently present even with normal serum magnesium (S-Mg) concentrations. We have studied retention of a low-dose (0.2 mEq/kg lean body weight), intravenously administered magnesium load in 6 hypomagnesemic patients and 18 normomagnesemic alcoholics as compared with 16 normal subjects. Both normomagnesemic and hypomagnesemic subjects retained significantly greater amounts of the administered magnesium than did the normal subjects. In patients who were restudied following parenteral magnesium repletion, retention of the magnesium load normalized. We conclude that increased retention of a magnesium load is a more sensitive index of magnesium deficiency than is the S-Mg concentration, and suggest that low-dose magnesium tolerance testing be used more frequently as a clinical tool in the evaluation of states of normomagnesemic magnesium deficiency.
The etiology of tumor-induced hypercalcemia was investigated in a transplantable Leydig cell tumor of the Fischer rat. In this model, serum calcium rose from a baseline of 10.4 ± 0.3 m mg/dl to 12.5 ± 0.4 mg/dl at day 10 and 16.4 ± 1.3 mg/dl (p<0.001) at day 13 post transplant. Urinary calcium also increased from 1.52 ± 0.17 mg/d to 3.52 ± 0.72 mg/d (Day 12, p<0.01). Serum phosphate decreased from a baseline of 7.5 ± 0.3 mg/dl to 5.5 ± 0.6 mg/dl at day 13 (p<0.05). At day 13 serum immunoreactive parathyroid hormone levels fell 76% from baseline (p<0.01). Calcitonin increased from 59 ± 2 pg/ml to 88 ± 9 pg/ml (p<0.01). The plasma prostaglandin E metabolite, 13, 14-dihydro-15-keto-PGE2 increased from 407 ± 103 pg/dl to 647 ± 62 pg/ml (p<0.05) and the active Vit D compound 1, 25(OH)2D increased from 94.8 ± 5.2 pg/ml to 162.3 ± 11.8 pg/ml (p<0.01). Urinary cyclic AMP did not decrease in parallel with the parathyroid hormone level and, in fact, increased from 146 ± 3 nmol/d to 172 ± 27 nmol/d (NS). Administration of the cyclooxygenase inhibitor indomethacin (20 mg/Kg/d) or hydrocortisone (50 mg/Kg/d) did not prevent the development of hypercalcemia. This model is similar to many patients with humoral hypercalcemia of malignancy who demonstrate suppression of parathyroid hormone with elevated urinary cyclic AMP excretion and may prove useful in the understanding of the responsible mechanisms.