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L Mosekilde

Publications and source records attributed to L Mosekilde.

At least 145 records · Page 8Linked to original sources

Quantification of remodeling parameter sensitivity--assessed by a computer simulation model.

During normal aging and menopause, cancellous bone is lost at all skeletal sites due to remodeling-related factors: negative formation balance; temporarily increased remodeling space; and osteoclastic perforations. The relative importance of the various factors in inducing bone mass loss and perforations is still controversial. We have previously used a computer simulation model to describe the effect of several bone remodeling parameters on vertebral cancellous bone loss. The model focused on two different scenarios for the menopause and three different treatment regimens. The aim of the present study was to extend the previous study by quantifying remodeling parameter sensitivity for changes in the bone mass with the use of the computer model we had previously formulated. The menopause scenario, with increased activation frequency and increased resorption depth, was chosen as the base case scenario, and the following parameters were investigated in the sensitivity analysis: activation frequency; formation balance; resorption depth; and critical trabecular thickness. Simulations were performed for a period of 20 years starting at the age of 48 years. The analysis showed that the number of perforations and the perforation-related mass loss both exhibited a large sensitivity toward variations in the final resorption depth. However, the formation balance was the factor that was responsible for the greater part of the bone mass loss. The computer model allowed us to quantify the sensitivity of different output variables with respect to changes in some of the model parameters. This can give information about the biological mechanisms responsible for bone mass loss around the surgically induced or natural menopause and also provide an indication of the type of treatment that would be most useful in preventing the deterioration of the cancellous network.

Adult↗

Skeletal responsiveness to thyroid hormone is not altered at menopause.

Hyperthyroidism is characterized by increased bone turnover and resorptive activity. Similar changes in remodeling are seen after menopause. To study the role of thyroid hormone in the menopause-related changes in bone metabolism, we investigated thyroid status and the sensitivity of bone to thyroid hormone in 14 premenopausal and 15 early postmenopausal women. Triiodothyronine (T3) was administered to the two groups as 20 micrograms doses three times daily for 7 days. The skeletal response was assessed by monitoring bone alkaline phosphatase (BAP), osteocalcin (BGP), pyridinium crosslinked telopeptide domain of type I collagen (ICTP) in serum and urinary excretion of hydroxyproline (OHP), pyridinoline (PYR), and deoxypyridinoline (DPR) at days 0, 8, 15, and 57. The early postmenopausal women had increased bone turnover as reflected in sBAP (p < 0.05), sBGP (p < 0.05), and uOHP (p < 0.01) when compared with premenopausal controls. T3 stimulation of early postmenopausal and premenopausal women significantly increased the markers of bone resorption: sICTP (56% vs. 44%), uOHP (45% in both groups), and UPYR (83% vs. 17%) without any significant differences between groups. Of the formative markers, only sBGP increased significantly after stimulation (34% vs. 41%), but both sBGP and sBAP displayed significant increases from days 15 to 57. Thus, stimulation with thyroid hormone results in an immediate stimulation of ongoing bone formation and bone resorption, but also initiation of new remodeling which, after 8 weeks, reached the formative phase. PTH decreased (p < 0.01) in both groups but serum calcium and serum phosphate were unaltered. In conclusion, menopause is not characterized by altered levels of thyroid hormones or altered skeletal responsiveness to thyroid hormones.

Alkaline Phosphatase↗

Reduced concentration of collagen reducible cross links in human trabecular bone with respect to age and osteoporosis.

The decrease of bone strength in relation to age and osteoporosis is more pronounced than would be expected from the relative deficit in the amount of bone. Besides bone mass, the mechanical properties of cancellous bone also depend on the microarchitecture and possibly on the molecular structure of inorganic and organic components. The present study examines the bone collagen, especially the collagen cross links, in relation to age and osteoporosis. Samples of vertebral trabecular bone were taken at autopsy from 43 normal individuals, aged 15-90 years. Eleven of these served as sex- and age-matched controls for similar samples from 11 osteoporotic individuals, 70-90 years. The volume of each trabecular bone sample was estimated. After removal of the marrow, the trabeculae were ground to powder and decalcified. The extractability of the bone collagen was studied by repeated extractions with acetic acid and pepsin. The divalent reducible collagen cross-links, dehydro-dihydroxylysinonorleucine (DHLNL) and dehydro-hydroxylysinonorleucine (HLNL), were determined by reducing the bone collagen with tritiated potassium borohydride followed by ion-exchange chromatography. The mature trivalent pyridinium cross links were determined by reverse-phase HPLC with fluorescence detection. The extractability of collagen prepared from the vertebral trabecular bone of control individuals was increased with age. Bone collagen of osteoporotic individuals showed increased extractability and a substantial decrease in the concentration of the divalent reducible collagen cross links (DHLNL reduced by 30% and HLNL by 24%) compared with the sex- and age-matched controls. No alterations were observed in the concentration of the pyridinolines. The divalent reducible cross-links are the most frequent known cross links in bone (2-4 times the concentration of the pyridinium cross links). These changes would therefore be expected to reduce the strength of the bone trabeculae and could explain why the osteoporotic individuals had bone fractures even though the collagen density (mg/cm3) did not differ from that of the sex- and age-matched controls. The microarchitecture of the cancellous bone was not assessed. The osteoporotic and control individuals seemed to have the same amount of trabecular bone, but the quality of the osteoporotic bone collagen was reduced.

Acetic Acid↗

Bone mass, bone turnover, body composition, and calcium homeostasis in former hyperthyroid patients treated by combined medical therapy.

It is still uncertain whether bone mass and bone turnover are completely normalized after treatment of hyperthyroidism. The aim of the present investigation was to determine bone mass, bone turnover, body composition, and calcium homeostasis in former hyperthyroid patients who had been euthyroid for at least 4 years following combined medical therapy. Thirty-nine former hyperthyroid patients and 67 normal sex- and age-matched controls participated. Height, body weight, and body composition were similar in the two groups. All patients were euthyroid. However, serum FT3I (free T3-index) was reduced by 9% (p < 0.01) in the patients compared to controls, serum FT4I was normal, while serum TSH was nonsignificantly reduced by 39%. No significant differences were observed between patients and controls with respect to total or regional bone mineral content (BMC) or density (BMD). The former hyperthyroid patients had slightly higher serum calcium (2.35 +/- 0.06 vs. 2.32 +/- 0.07 mmol/L, p < 0.05) and lower serum phosphate (1.15 +/- 0.15 vs. 1.24 +/- 0.15 mmol/L, p < 0.01) than their controls. Renal excretion of calcium and serum levels of magnesium, 1,25-vitamin D and intact PTH were unchanged. Renal excretion of pyridinoline was increased by 30% (p < 0.05) in the patients, whereas the remaining resorptive markers, renal excretion of hydroxyproline and deoxypyridinoline and serum cross-linked carboxy-terminal teleopeptide of type I collagen (ICTP) were unaltered. Among the formative bone markers the average serum carboxy-terminal propeptide of human type I procollagen (PICP) level was 12% lower (p < 0.05) than in the control group, whereas serum levels of osteocalcin and total and bone alkaline phosphatase were normal. In conclusion, former hyperthyroid patients treated by combined medical therapy have normal bone mineral content and density in spite of minor variations in thyroid hormones and skeletal homeostasis.

Biomarkers↗

Bone mass, bone turnover, calcium homeostasis, and body composition in surgically and radioiodine-treated former hyperthyroid patients.

Untreated hyperthyroidism is characterized by increased bone turnover with loss of bone and bone mineral. The aim of the present investigation was to evaluate the reversibility of these changes by measuring bone mass, bone turnover, and calcium homeostasis in surgically treated former hyperthyroid patients who had been euthyroid for at least 6 years. Sixty euthyroid former hyperthyroid patients and 94 normal sex- and age-matched controls participated. Heights and body weights and composition were similar in the two groups. In the thyroxine substituted patients (n = 27) both serum T4 and serum free T4-index (S-FT4I) were increased (p < 0.001) compared to the normal controls as well as the nonsubstituted patients. In the nonsubstituted patients. In the nonsubstituted patients (n = 33), serum TSH was increased (p < 0.001) compared to the normal controls. No significant differences were observed between substituted and nonsubstituted patients and normal controls with respect to serum T3, serum free T3-index (S-FT3I), or regional or total bone mineral content (BMC) and density (BMD) values. Serum levels of calcium, phosphate, magnesium, intact PTH, and renal excretion of calcium were unchanged. However, serum levels of 1,25-dihydroxy- and 25-hydroxyvitamin D were reduced. Urinary excretion of hydroxyproline was increased by 16% (p < 0.05), but serum cross-linked carboxy-terminal teleopeptide of type I collagen (ICTP) was decreased by 11% (p < 0.01). Urinary excretion of collagen cross-links was normal. Serum levels of osteocalcin, carboxy-terminal propeptide of human type I procollagen (PICP), and total and bone alkaline phosphatase were all normal. In conclusion, surgically treated former hyperthyroid patients have normal bone mass, bone turnover, and calcium homeostasis in spite of minor variations in thyroid hormones and vitamin D metabolites.

Adult↗

Relations between radiographic trabecular pattern and biomechanical characteristics of human vertebrae.

PURPOSE: Relations between the radiographic trabecular pattern and the biomechanical characteristics of bone were studied. MATERIAL AND METHODS: The material comprised L2 and L3 vertebral bodies of 14 individuals (aged 22-76 years; 6 women and 8 men). Compressive strength and ash density of the complete L2 vertebral body were determined. Of the L3 vertebral body, ash density and compressive strength in both horizontal and vertical directions were measured on cylinders of merely trabecular bone. Radiographs were taken of a midsagittal slice of L3 vertebrae. They were digitized to measure trabecular bone geometry and orientation. The procedure was repeated several times to obtain reliable measures. RESULTS: The radiographic trabecular pattern was significantly related to compressive strength, ash density and age. One of the radiographic geometric features in particular seems to offer information concerning the structural integrity of the trabecular architecture. CONCLUSION: Analysis of the radiographic trabecular pattern appears to be a promising technique for prediction of trabecular bone strength.

Aging↗

Effects of 12 months of growth hormone (GH) treatment on calciotropic hormones, calcium homeostasis, and bone metabolism in adults with acquired GH deficiency: a double blind, randomized, placebo-controlled study.

The effects of GH substitution on skeletal mass, bone turnover, and calcium metabolism were investigated in 29 patients with GH deficiency who were randomized to sc injections with GH (2 IU/m2 day) or placebo for 12 months. During GH treatment, serum insulin-like growth factor I increased 263 +/- 98% (P < 0.001). Serum osteocalcin, bone a alkaline phosphatase, and procollagen type I C-terminal propeptide increased by 376 +/- 78% (P < 0.005), 128 +/- 17% (P < 0.005), and 100 +/- 17% (P < 0.005), respectively. Serum type I collagen telopeptide and urinary levels of pyridinoline, deoxypyridinoline, and hydroxyproline rose by 158 +/- 39% (P < 0.005), 170 +/- 48% (P < 0.005), 156 +/- 78% (P < 0.005), and 161 +/- 50% (P < 0.005), respectively. Serum ionized calcium rose by 1.7 +/- 0.6% (P < 0.05), whereas serum PTH decreased insignificantly. Vitamin D metabolites remained unaltered. Urinary calcium/creatinine increased and phosphate/creatinine decreased transiently, returning to baseline values at 9 months. When measured by dual energy x-ray absorptiometry, whole body bone mineral density (BMD) and (BMD) of the radius decreased 2.4 +/- 0.6% (P < 0.05) and 3.5 +/- 1.0% (P < 0.005), respectively, whereas no significant changes were observed in BMD of the femur or spine. Our results indicate that long term GH treatment activates bone remodeling in patients with GH deficiency. The observed slight decrease in BMD may be explained by expansion of the remodeling space and reduced mean age of bone tissue. IT remains unclear whether long term treatment with GH will lead to an increase in bone mass and improved skeletal biomechanical competence.

Adult↗

Bone mass, bone turnover and body composition in former hypothyroid patients receiving replacement therapy.

The aim of the present cross-sectional study was to disclose whether long-term thyroxine replacement therapy (TRT) in primary hypothyroidism causes osteopenia. We compared 36 adult biochemically and clinically euthyroid patients who had received TRT for more than 5 years (mean 13 years) for primary hypothyroidism with 80 sex- and age-matched normal controls. Height, body weight and lean body mass were similar, but the patients had 21% higher fat body mass (p = < 0.01) than their controls. Furthermore, compared to controls the patients had 29% higher serum thyroxine (T4) and 31% higher serum free T4 index (FT4I) levels (p < 0.001), whereas serum triiodothyronine (T3) and FT3I levels were both reduced by 7% (p < 0.05). In the patients, serum TSH was reduced significantly (p < 0.001). No significant differences were observed between patients and normals in regional or total bone mineral content or bone mineral density levels, apart from 20% higher lumbar bone mineral content among the premenopausal patients (p < 0.05). Surprisingly, the mean serum calcium level was slightly elevated (2.38 +/- 0.08 vs 2.33 +/- 0.07 mmol/l, p < 0.001), serum phosphate decreased (1.13 +/- 0.19 vs 1.23 +/- 0.16 mmol/l, p < 0.01) and 24-h renal calcium excretion was reduced by 19% (p < 0.05). No changes were observed in serum magnesium, intact parathyroid hormone or calcitriol. The biochemical markers of bone resorption (serum carboxyterminal telopeptide of type I collagen, renal excretion of hydroxyproline, pyridinoline and deoxypyridinoline) and formation (serum levels of carboxyterminal propeptide of type I procollagen, osteocalcin and total and bone alkaline phosphatase) were similar in the two groups. We conclude that long-term thyroxine replacement therapy in primary hypothyroidism does not exert a negative effect on bone mass or alter bone turnover.

Adult↗

[Loss of trabecular bone strength and bone quality after 5 years of fluoride therapy for osteoporosis].

In order to evaluate the effect of sodium fluoride (NaF) on bone biomechanical competence, iliac crest biopsies were taken before and after one year of treatment in 12 osteoporotic patients, and before and after five years of treatment in 14 patients. Bone fluoride content had increased significantly after both one and five years of treatment, indicating that the administered fluoride had been ingested. After one year of treatment, no difference was observed in iliac crest trabecular bone ash content. A general trend for decreased bone strength and bone quality was observed, but this was insignificant. After five years of fluoride treatment, an insignificant decrease in iliac crest trabecular bone ash content was observed. A significant reduction of 45% was found in trabecular bone strength (p < 0.05), and an even more pronounced reduction of 58% was found in trabecular bone quality (p < 0.01). The results of this study indicate that long-term administration of sodium fluoride may be detrimental to bone quality, at least as measured in non-loaded iliac crest trabecular bone.

Aged↗

Short-term treatment with growth hormone stimulates osteoblastic and osteoclastic activity in osteopenic postmenopausal women: a dose response study.

To investigate the potential use of growth hormone (GH) in Activate-Depress-Free-Repeat treatment of postmenopausal osteoporosis, we measured changes in serum levels of biochemical markers of bone turnover, insulin-like growth factor-I (IGF-I), calciotropic hormones, and bone mineral density in 40 postmenopausal women with osteopenia (ages 52-73 years) in response to 7 days of treatment with either placebo or GH (0.05, 0.10, or 0.20 IU/kg/day) administered subcutaneously in the evening. GH treatment increased serum osteocalcin (p < 0.01) and C-terminal type-I procollagen propeptide (p < 0.01) and also serum levels of type-I collagen telopeptide (p < 0.001), fasting urinary hydroxyproline/creatinine (p < 0.05), pyridinoline/creatinine (p < 0.05), and deoxypyridinoline/creatinine (p < 0.01) in a dose-dependent fashion. Even the lowest dose of GH tested induced a significant increase in these parameters; however, the effects were transient lasting only 1-2 weeks. In the highest dose group, however, a somewhat prolonged effect (30 days) on serum osteocalcin was observed. Furthermore, GH increased serum levels of IGF-I, insulin, and tri-iodothyronin. No effect on serum 1,25-dihydroxyvitamin D3 or parathyroid hormone could be demonstrated. Adverse effects were mainly related to fluid retention. They were clearly dose-dependent and rapidly reversible. In conclusion, short-term GH treatment stimulates bone formation and bone resorption in postmenopausal women with osteopenia.

Aged↗

Equivalent deficits in bone mass of the vertebral body and posterior processes in women with vertebral fractures: implications regarding the pathogenesis of spinal osteoporosis.

Reduced bone mass of the spine in women with vertebral fractures is attributed to excessive trabecular bone loss from the vertebral body. However, the measurement obtained by posteroanterior (PA) scanning includes the posterior processes and the vertebral body, each comprising about 50% of the total vertebral mass. Thus, the deficit in bone mass by PA scanning may be due to deficits in one or both of these structures. We asked two questions: (1) In healthy women, is the age-related diminution in bone mass of the vertebral body greater than the diminution at the posterior processes? (2) In women with vertebral fractures, is the deficit in bone mass at the vertebral body, the fracture site in spinal osteoporosis, greater than at the posterior processes? Bone mass of the posterior processes and vertebral body of the third lumbar vertebra was measured by lateral scanning using dual-energy X-ray absorptiometry (DXA). Compared with 27 premenopausal women, deficits in 27 postmenopausal women at the posterior processes and vertebral body, respectively, were 35.9 +/- 3.7 and 25.2 +/- 4.1% (p < 0.05); t score, -1.5 +/- 0.2 and -1.1 +/- SD (p = 0.09). Compared with the postmenopausal (age-matched) women, deficits in 21 women with vertebral fractures at the posterior processes and vertebral body, respectively, were 22.6 +/- 4.9 and 24.5 +/- 8.3% (p = NS); Z score, -0.8 +/- 0.2 and -0.8 +/- 0.3 (p = NS). In vivo the bone mass of the vertebral body as a percentage of the whole vertebra was 45.7 +/- 0.1 in premenopausal women, 48.9 +/ 1.9 in postmenopausal women, 51.5 +/- 1.1 in women with low bone mass but no fractures, 52.7 +/- 2.4 in women with vertebral fractures, and 51.9 +/- 2.5% in vitro, based on autopsy specimens from 19 postmenopausal women aged 65 - 95 years. The lower spinal bone density measured using PA scanning in women with spine fractures may not be due to excessive or disproportionate trabecular bone loss from the vertebral body because comparable deficits are found at the posterior processes. Whether these deficits are due to reduced peak bone mass, trabecular bone loss, cortical bone loss, or varying combinations of these mechanisms remains to be established.

Absorptiometry, Photon↗

Vitamin D3 analogs and salmon calcitonin partially reverse the development of renal osteodystrophy in rats.

We have previously established an uremic rat model which is suitable for investigating the effect of various treatment modalities on the progression of renal osteodystrophy [1]. Four months subsequent to 5/6 nephrectomy, animals were treated three times a week for 3 months with either vehicle, 1,25-dihydroxyvitamin D3 [1,25(OH)2D3], 1,25(OH)2D3 + 24,25-dihydroxyvitamin D3 [24,25(OH)2D3], 1,25(OH)2D3 + calcitonin (CT), or 1,25(OH)2D3 + 24,25(OH)2D3 + CT. At termination of the study, clinical chemistry, chemical composition, and mechanical properties of femurs, calvarial parathyroid hormone (PTH)-elicited adenylate cyclase (AC), and phospholipase C (PL-C) activities, femoral cross-sectional area, and bone histomorphometry were analyzed. The main findings were that 1,25(OH)2D3 +/- 24,25(OH)2D3 treatment enhanced elasticity as well as time to fracture at the femoral metaphysis. CT potentiated the increase in elasticity obtained by 1,25(OH)2D3 +/- 24,25(OH)2D3 treatment. Only 24,25(OH)2D3 administration rectified the supernormal PTH-stimulated uremic bone AC, and only 1,25(OH)2D3 medication normalized the diminished CT-elicited AC. The obliterated uremic bone PTH-sensitive PL-C was fully normalized by all drug regimens. Femoral shaft inner zone diameter was enhanced by uremia, however, all drug treatments normalized it. Ditto effect was registered with either drug treatment on the subnormal outer and inner zone widths. Histomorphometrical analyses showed that 1,25(OH)2D3 administration reduced both eroded and osteoid surfaces. Most prominently, adjuvant 24,25(OH)2D3 or CT administration potentiated the beneficial effect of 1,25(OH)2D3 on fibrosis and osteomalacia. We assert that vitamin D3 treatment markedly reverses the development of renal osteodystrophy, and CT potentiates the effect of vitamin D3.

24,25-Dihydroxyvitamin D 3↗

Effect of short-term treatment with recombinant human growth hormone on lipids and lipoproteins in women and men without growth hormone disturbances.

The effect of recombinant human growth hormone (rHGH) on cholesterol, high- and low-density lipoprotein (HDL and LDL) cholesterol, triglycerides (TG), apolipoprotein (apo) B, apo A-I, and lipoprotein(a) [Lp(a)] was studied in 40 postmenopausal women treated with 0.05, 0.1, or 0.2 IU/kg/d rHGH or placebo for 7 days. Cholesterol, LDL cholesterol, and HDL cholesterol decreased in a dose-dependent manner (P = .001, P = .001, and P = .003, respectively), whereas apo B decreased insignificantly (P = .15). Apo A-I decreased significantly only among women treated with rHGH at a dose of 0.1 IU/kg/d (P = .03). When all rHGH-treated women were grouped together, Lp(a) increased (P = .001). We also studied 20 young men treated with either 0.2 IU/kg/d rHGH or placebo. As in women, cholesterol and apo B decreased P = .005 and P = .02, respectively), whereas Lp(a) increased (P = .05). There was no detectable effect of rHGH on TG concentrations in men. As in women, there was no significant effect of 0.2 IU/kg/d rHGH on apo A-I concentrations. All lipid and lipoprotein measures reached pretreatment levels during the first week after treatment was stopped, except Lp(a), which remained elevated 2 weeks after rHGH cessation.

Aged↗

The anabolic effects of parathyroid hormone on cortical bone mass, dimensions and strength--assessed in a sexually mature, ovariectomized rat model.

The aim of the study was to determine the effect of parathyroid hormone (PTH), the antiresorptive agents estrogen and bisphosphonate (risedronate), and also the combination of PTH with these antiresorptive drugs on femoral cortical bone mass, dimensions and strength in a sexually mature, ovariectomized rat model. A total of 138, 3-month-old Sprague-Dawley rats were randomized into seven groups: 1--sham operated (control); 2--ovariectomized (OVX); 3--OVX plus estrogen; 4--OVX plus bisphosphonate (risedronate [NE]; 5--OVX plus hPTH (1-34); 6--OVX plus hPTH (1-34) and estrogen; 7--OVX plus hPTH (1-34) and risedronate. Treatment regimens were initiated 4 weeks after OVX and were continued for 5 and 15 weeks for each treatment group. Changes in bone mass (ash content), cross-sectional area, cortical thickness and dimensions and bone strength were assessed in middiaphyseal, femoral specimens. The results revealed that ovariectomy had no effect on cortical bone mass and biomechanical competence. OVX rats treated with estrogen and also OVX rats treated with risedronate showed no significant difference from either OVX or control groups. After only 5 weeks of treatment, hPTH monotherapy increased ash content, cross-sectional area, cortical thickness and compressive bone strength (load) significantly. After 15 weeks of treatment, OVX rats treated with PTH monotherapy or PTH in combination with risedronate showed identical load-values. These values were significantly higher than those seen in both control and OVX rats. However, PTH in combination with estrogen failed to augment cortical bone strength over control or OVX levels after therapy.(ABSTRACT TRUNCATED AT 250 WORDS)

Analysis of Variance↗

Parathyroid hormone monotherapy and cotherapy with antiresorptive agents restore vertebral bone mass and strength in aged ovariectomized rats.

Previous studies have shown that parathyroid hormone (PTH) monotherapy and cotherapy with estrogen or risedronate augment vertebral bone mass and bone strength in young, ovariectomized (OVX) rats. The current study was designed to determine whether PTH has similar bone anabolic effects in aged OVX rats at a much later stage of estrogen depletion. Female Sprague Dawley rats were subjected to sham surgery or bilateral ovariectomy at three months of age and maintained untreated for one year after surgery to allow for the development of vertebral osteopenia in OVX rats. Groups of baseline control and OVX rats were sacrificed at the end of this pretreatment period. The remaining OVX rats were then treated for ten weeks with vehicle, antiresorptive agents alone (estrogen, risedronate, or calcitonin), or PTH alone. Other groups of OVX rats were treated concurrently with PTH and each of the antiresorptive agents. The first and fourth lumbar vertebral bodies were processed undecalcified for quantitative bone histomorphometry and biomechanical testing, respectively. As expected, bone mass and compressive strength were decreased in the lumbar vertebral body of baseline OVX rats compared to baseline control rats. This bone loss was associated with decreases in trabecular number and width and an increase in trabecular separation. Treatment with estrogen, risedronate, or calcitonin alone failed to reverse the changes in bone mass, structure, and strength induced by ovariectomy. In contrast, treatment of OVX rats with PTH alone restored vertebral cancellous bone volume and ash density to the level of vehicle-treated control rats and increased vertebral maximum load, stress, and normalized load to well above this level.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Unbiased estimation of vertebral trabecular connectivity in calcium-restricted ovariectomized minipigs.

The topological changes in vertebral cancellous bone were estimated in vertebrae from calcium-restricted ovariectomized Sinclair S-1 minipigs, a recently described animal model of cancellous osteopenia. Connectivity was estimated using unbiased stereological principles in disector pairs of sections from the first lumbar vertebrae. Connectivity density was increased approximately twofold when compared with sham-operated minipigs fed a standard diet. These alterations in topology occurred coincident with a 25% increase in final resorption depth and a 150% increase in vertebral marrow star volume. Taken together, these changes suggest that in calcium-restricted ovariectomized minipigs, trabecular plates are transformed into rods by perforation. These changes in topology appear to be due, at least in part, to excessive resorptive cell function at the level of the bone remodeling unit. Conventional two-dimensional estimators of structural parameters of cancellous bone were not only less sensitive to these changes in topology but, in some cases, the estimates were directionally reversed.

Animals↗