[Clinical evaluation of bone scintigraphy with 99mTc-labeled phosphate compounds (part three)--metabolic bone diseases and bone dysplasias-- (author's transl)].
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The serum concentration of 1,25-dihydroxylvitamin D (1,25-[OH]2D) in normal children and in children with inherited diseases of bone was compared by use of a competitive binding assay. Observed values were: in 12 normal children and adolescents, 37.1 +/- 1.9 pg per milliliter (mean +/- S.D.); in 14 patients with X-linked hypophosphatemic rickets treated with vitamin D2 and phosphate supplements, 15.6 +/- 7.8 (P less than 0.01 versus control); in six patients with autosomal recessive vitamin D dependency treated with vitamin D2, 9.5 +/- 2.9 (P less than 0.01 versus control); and in four untreated patients with autosomal dominant hypophosphatemic (non-rachitic) bone disease, 30.2 +/- 6.3 (not significantly different from the controls). The difference in bone disease between X-linked hypophosphatemia (severe) and hypophosphatemic bone disease (mild) at comparable low serum levels of phosphate implies that 1,25-(OH)2D and phosphate may have independent roles in the pathogenesis of defective bone mineralization.
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Kinetic and morphologic studies in patients with parathyroid disease, and a wide variety of studies in experimental animals indicate that one major effect of PTH is to increase the proliferation of osteoprogenitor cells into osteoclasts and so to increase bone turnover. PTH stimulates bone cells by increasing cell membrane permeability to calcium and consequently increasing calcium influx and by activating membrane-bound adenyl-cyclase. It is likely that the former event precedes the latter and that calcium is the second messenger and cyclic AMP the third messenger. PTH increases the production by bone cells of lactate, citric and carbonic acids, lysosomal enzymes, collagenase, and hyaluronic acid, some or all of which are concerned in the mechanism of bone resorption. With the exception of lactate which probably comes mainly from osteocytes, the increase in metabolic activity is largely due to the increase in the number of osteoclasts. There is also ultrastructural, biochemical, and biophysical evidence that PTH stimulates existing osteoclasts, but this most likely represents the transformation of inactive cells into an active state, and is a transient and nonsustainable effect. As yet, there is no evidence that either increased osteoprogenitor cell proliferation or increased osteoclast activity is mediated by adenyl-cyclase activation. PTH also acts on the deep osteocyte to cause rapid mobilization of calcium from the zone of hypomineralized metabolically active perilacunar bone. This effect is mediated by adenyl-cyclase activation and is preceded by a slight fall in plasma calcium probably due to the movement of calcium into bone cells. The function of this rapid hypercalcemic response to PTH is correct errors in the prevailing steady-state level of plasma calcium...
Thirty-five patients with bone disease and chronic renal failure (twenty-four on maintenance haemodialysis) were treated for 7--39 months with 1alpha-hydroxyvitamin D3, 2--2.5 microgram daily by mouth. Symptoms (bone pain and muscle weakness) and radiographic appearances improved and plasma alkaline phosphatase returned to normal in the majority of patients (87, 76 and 75% respectively). In contrast, histological appearances in bone improved in only 46% twenty-three patients from whom paired biopsies were available, and this change was not greatly different from that seen in a comparable group of untreated patients. Significant correlations were noted in individual patients between the changes in symptoms, X-rays, plasma alkaline phosphatase and immunoreactive parathyroid hormone and these, in turn, were related to histological changes in bone, although these latter changes were often small. It is concluded that 1alpha-hydroxyvitamin D3 is a useful new drug in the treatment of renal bone disease, but that the evaluation of the response depends critically on the method of assessment used.
In early chronic renal failure, the state of the bones resembles that of type II primary hyperparathyroidism. Cortical bone becomes thinner and more porous, and there is increased extent of surface remodeling. These changes are followed in turn by osteomalacia and osteitis fibrosa, although sometimes these may be alternate rather than successive stages. Bone turnover is less than would be expected for the elevation of PTH level, probably because of 1,25 (OH)2D3 deficiency. The resorption velocity and lamellar bone appositional rates are depressed, but woven bone appositional rate may be increased, possibly because of hyperphosphatemia. Bone mass reflects the summation of three independent processes: loss of lamellar bone due to hyperparathyroidism (depending on the extent of insulation by osteoid); accumulation of partly mineralized osteoid because of osteomalacia; accumulation of woven bone because of osteitis fibrosa. Osteosclerosis may be growth-related metaphyseal, subchondral or diffuse axial, and periosteal neostosis may also occur. Some patients on hemodialysis lose bone because of planing rather than lacunar or dissecting resorption, combined with depression of both lamellar and woven bone formation. Hyperparathyroid bone disease tends to improve slowly after renal transplantation. Persistent hypocalcemia reflects a defect in the calcium homeostatic system and cannot be explained solely by the known stimuli to secondary hyperparathyroidism. The increment in plasma calcium in response to PTH infusion is subnormal, both in early chronic and in acute renal failure, probably because of 1,25(OH)2D3 deficiency. This is also the most likely explanation for the depressed level of blood-bone equilibrium. The activity of all three of the PTH responsive cell systems in bone is depressed in renal failure, probably because all three require 1,25(OH)2D3 in order to function normally. In pseudohypoparathyroidism, as in chronic renal failure, hypocalcemia results from a defect in the regulation of the blood-bone equilibrium. The bone-remodeling system shows all gradations of response, from slight depression of bone turnover to overt osteitis fibrosa, but bone turnover is never as low as in PTH deficiency. These differences may reflect the presence or absence of resistance to PTH of the osteoprogenitor cell as well as of the calcium homeostatic system, or may be due to varying degrees of 1,25(OH)2D3 deficiency, as in chronic renal failure. An increase in plasma calcium in response to PTH can occur either in the untreated state or after treatment with vitamin D because either the error-correcting or remodeling system remains responsive to PTH. Pseudohypoparathyroidism may be subdivided into three types, depending on whether the urinary cyclic-AMP response to PTH remains defective despite treatment with vitamin D, improves with treatment, or is normal before treatment. Only the former is associated with the genetic syndrome of Albright's hereditary osteodystrophy...
The limited role of bone scanning in the diagnosis of metabolic bone disease might be considerably improved by accurate quantification of skeletal uptake of the radiopharmaceutical. Using a standard shadow-shield whole-body monitor, we have measured whole-body retention (WBR) of Tc-99m HEDP up to 24 hr in 11 patients with renal osteodystrophy (mean WBR 88.6% at 24 hr); in ten patients with Paget's disease (mean 56.9%); in seven patients with osteomalacia (mean 40.7%); in five patients with primary hyperparathyroidism (mean 50.7%); in four patients with osteoporosis (mean 21.2%); and in 12 normals (mean 19.2%). The osteoporotic group could not be differentiated from the normal group, but the other groups were significantly different from the normal group at 24 hr (p less than 0.002), and each individual rest for the 24-hr WBR of Tc-99m HEDP in these groups lay outside our normal range. This test may, therefore, provide a sensitive means of detecting conditions with increased bone turnover. We obtained measurements of plasma activity of Tc-99m HEDP in these patients up to 24 hr, and 4-hr bone to soft-tissue ratios from bonescan images, but little additional information resulted.
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29 patients receiving haemodialysis treatment for chronic renal failure were divided into two groups on the basis of the presence or absence of bone disease as defined by radiology and bone alkaline phosphatase. The group of patient with bone disease showed a significantly greater increase in protein-bound calcium during dialysis compared with the control group. There were no significant differences in the changes in total calcium, albumin or hydrogen ion concentration during dialysis between each group. The data suggest that there is a relationship between the increase in protein-bound calcium during dialysis and the incidence of bone disease.
Bone tissue was examined in 21 patients who had undergone jejuno-ileal bypass for obesity between 1971 and 1974. 10 patients had osteomalacia with evidence of secondary hyperparathyroidism. Clinical symptoms and biochemical and radiological investigations were often unreliable in diagnosing bone disease, although plasma-25-hydroxyvitamin-D and plasma-phosphate concentrations were significantly lower and plasma-parathyroid-hormone concentrations were significantly higher in the patients with bone disease. The presence of osteomalacia was unrelated to age, length of time since bypass, or post-bypass weight-loss, and plasma-25-hydroxyvitamin-D levels did not correlate closely with bone histological changes. It is concluded that osteomalacia is common after jejuno-ileal bypass and that factors other than simple vitamin-D deficiency may contribute to its development.
Comparison of biopsies from patients with Paget's bone disease before and during long-term treatment with calcitonin reveals that the ration of bone-adherent osteoclasts to free osteoclasts is not modified by the hormone. Nor does treatment alter the average number of nuclei in osteoclasts. Under electron microscopy, all the cytological anomalies of osteoclasts in Paget's bone disease and, in particular, the characteristic nuclear inclusions, persist through treatment. Thus, although such osteoclasts do react to calcitonin as demonstrated by several authors, the specific morphological anomalies remain unaffected by the treatment. It is likely that the osteoclast in Paget's bone disease is an abnormal cell with peculiarities which may be related to the yet unknown etiology of the disease.
We report about two seldom types of diseases of bones. Both came to our hospital with the diagnosis Osteomyelitis. The first case, the Mafucci-Syndrome, is presented--a systemic Chondrodysplasia with Angiomatosis. This disease is not hereditary. There are found multiple Enchondromas mostly in the longer bones. In 20% the cases of the Mafucci-Syndrome get malignant. The second case shows the Conradi-Hünermann-Syndrome a Chondrodysplasia calcificans congenita, which seems to be hereditary. The characteristic sign is the minor growth of the bones, caused by early deposition of lime in the regions of ossification. Malignity is not described.
Twenty-three patients with bone disease and chronic renal failure were treated for periods of 4--28 months with 1alpha-hydroxyvitamin D3 (1alpha-OHD3). Improvements in bone histology were consistently seen in patients with features both of osteitis fibrosa and osteomalacia but were not invariably observed in patients with osteitis fibrosa or osteomalacia alone (37 and 50% improved respectively). Several factors influencing the outcome of treatment were assessed on the basis of histological responses in bone. A low level of plasma calcium before treatment, rather than the dose of 1alpha-OHD3 tolerated, was the major detectable factor which favourably affected the histological outcome. Other factors examined, including initial plasma concentrations of phosphate, immunoreactive parathyroid hormone and alkaline phosphatase, and treatment with haemodialysis or dietary supplements of calcium did not apparently influence the response.
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Certain easily recognisable features are commonly seen in the bone scans of patients with metabolic bone disorders. Seven such features have been numerically graded by three independent observers in the scans of 100 patients with metabolic bone disease and of 50 control subjects. The total score for each patient is defined as the metabolic index. The mean metabolic index for each group of patients with metabolic bone disease is significantly greater than that for the control group (P less than 0.001).
A significant correlation between the activity of the bone isoenzyme or serum alkaline phosphatase and the urinary hydroxyproline excretion in osteomalacia, osteoporosis, primary hyperparathyroidism with osteodystrophy, Paget's disease, secondary bone tumours, and in a control group was found (P less than 0.001). This close correlation was not observed between these variables in patients with active acromegaly. Diagnosis determined from these indices of formation and turnover of bone matrix agreed with that established by histological and histochemical examination of bone, by X-ray investigation of the skeleton, and by the radionuclear 85Sr test. The relationship between the activity of bone isoenzyme and urinary hydroxyproline excretion differed in metabolic bone diseases with a high bone turnover, in patients with osteoporosis and in patients with early osteoclastic bone metastases.