Calcitonin and bone diseases.
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Biomedical subjects
Publications and source records attributed to J Y Reginster.
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OBJECTIVE: To assess the optimal dosage of oral tiludronate in Paget's disease of bone. METHODS: We studied 149 patients with Paget's disease, in a double-blind, randomized, placebo-controlled trial. Patients were randomly assigned to 1 of 5 therapeutic groups: a daily dose of 100 mg, 200 mg, 400 mg, or 800 mg of oral tiludronate, or a placebo. Treatment was for 3 months, followed by 3 months of placebo-controlled followup. Serum alkaline phosphatase activity (SAP) and fasting urinary excretion of hydroxyproline/creatinine (OH/Cr) were measured monthly, as were biochemical parameters reflecting renal, hepatic, and hematologic functions. Analgesic efficacy was self-evaluated from a visual analog scale and a global pain index. RESULTS: Statistical analysis revealed that beginning at a dosage of 200 mg/day, there was a direct dose-dependent effect on the reduction of SAP and OH/Cr levels. Reduction of SAP levels was clinically significant at a dosage of 400 mg (44.9 +/- 4.2% reduction at 90 days and 49.2 +/- 4.5% at 180 days, mean +/- SEM) and at 800 mg (53.4 +/- 5% at 90 days and 59.3 +/- 4.6% at 180 days). There was a significant reduction in pain in all groups, including the group taking placebo. In only those taking 800 mg/day of tiludronate was there a significant frequency of complete resolution of pain (versus placebo). Aside from mild gastrointestinal disturbances, as experienced with other oral bisphosphonates, clinical tolerance of all 5 regimens was good. Exhaustive biochemical investigations failed to reveal significant toxicity of tiludronate up to the 800-mg daily dose investigated. CONCLUSION: Because of its significantly better antiresorptive effects and greater analgesic properties (compared with lower dosages), combined with the excellent clinical and biochemical tolerance, the 800-mg daily dose of tiludronate appears to be optimal for the treatment of Paget's disease of bone.
Biochemical parameters reflecting bone resorption [urinary calcium/creatinine (Ca/Cr) and hydroxyproline/creatinine (OH/Cr)] were related to serum estrogens [estrone (E1) and estradiol (E2)] in 262 healthy women including 158 patients receiving estrogen replacement therapy (ERT) for at least 6 months, 49 eugonadal women, and 55 untreated postmenopausal women. A significant (P < 0.001) correlation exists between serum E2 and Ca/Cr: Ca/Cr (mg/dl) = -0.00044 E2 (pg/ml) + 0.129 (n = 262; r = -0.37), serum E2 and OH/Cr: (OH/Cr (mg/g) = -0.049 E2 (pg/ml) + 18.76 (n = 262; r = -0.36), serum E1 and Ca/Cr: Ca/Cr (mg/dl) = -0.0003 E1 (pg/ml) + 0.127 (n = 261; r = -0.28) but not between serum E1 and OH/Cr. Women with circulating levels of E2 between 60 and 90 pg/ml have a significant (P < 0.01) reduction of Ca/Cr and OH/Cr when compared with those with lower levels of E2. Higher values of E2 do not provide additional benefit. We conclude that in postmenopausal women receiving an estrogen replacement therapy (ERT), a significant reduction of bone resorption is achieved when circulating levels of estradiol reach a value (60 pg/ml) corresponding to the one measured, in eugonadal women, during the last days of the early follicular phase of the menstrual cycle. We suggest that oral or percutaneous ERT should induce a minimal value of 60 pg/ml to prevent postmenopausal bone loss.
In order to evaluate the potential inhibition of the acute anti-osteoclastic activity of salmon calcitonin (SCT) by specific antibodies (Ab), we compared the SCT-induced hypocalcemic effect in young male rabbits with significant titers of high affinity Ab and in matched animals without Ab. Immunization of rabbits was performed by repetitive s.c. injections of SCT and Freund adjuvant. Ab were present in four-fifths of SCT-treated rabbits (Ab+). Their titer varied from 0.8 x 10(-9) to 30 x 10(-9) M/liter and their constant of affinity from 0.97 x 10(9) to 4.2 x 10(9) L/M. Intravenous injection of 1 IU/kg SCT to Ab+ rabbits induced a significant decrease (P less than 0.01) of ionized serum calcium (Ca2+) after 30 minutes (mean +/- SD: -9 +/- 0.6%) and until the 240th minute of the test (-16.7 +/- 4.7%), with a maximum after 120 minutes (-22.6 +/- 2%). This was not significantly different from the hypocalcemic effect measured after the same procedure performed in matched animals without Ab (Ab-): significant decrease in Ca2+ (P less than 0.01) after 30 minutes (-8.2 +/- 2.2%), maximal after 150 minutes (-23.2 +/- 4.9%), and lasting until 210 minutes (-14.5 +/- 3.7%). We conclude that, in the particular model of the male young rabbit, specific anti-SCT Ab do not block or reduce the acute anti-osteoclastic activity of SCT.
The exact role of calcitonin (CT) in the pathogenesis of senile (Type II) osteoporosis remains unknown. Whole plasma calcitonin (iCT) and extracted monomeric calcitonin (eCT) basal levels, metabolic clearance rate (MCR) and production rate (PR) of iCT and eCT were measured in 41 postmenopausal women, including 14 hip fractures (OP II) and 27 healthy controls. No significant difference appeared for basal iCT levels between OP II (mean +/- SEM: 41.9 +/- 3.4 pg/ml) and controls (mean +/- SEM: 46.2 +/- 5 pg/ml). eCT basal levels were similar in OP II (mean +/- SEM: 5.42 +/- 0.5 pg/ml) and in controls (mean +/- SEM: 7.3 +/- 0.7 pg/ml). MCR were similar in the two groups. iCT PR were similar in OP II (mean +/- SEM: 17.2 +/- 1.5 micrograms/24 h) and controls (mean +/- SEM: 18.6 +/- 1.1 micrograms/24 h). No difference appeared between eCT PR in OP II (mean +/- SEM: 2.3 +/- 0.2 micrograms/24 h) and controls (mean +/- SEM: 3.2 +/- 0.3 pg/ml). From these data, no evidence appears that calcitonin might be one of the determinant factors in the pathogenesis of senile osteoporosis.
Osteoporosis, associated with a high turnover of bone and acute bone loss, occurs in a number of clinical models, such as following prolonged steroid therapy, extremity and spinal immobilisation, and often is associated with fracture. Confinement to bed and subsequent hypodynamism relating to the pain following a vertebral fracture may activate the process of high bone turnover and acute bone loss. In postmenopausal women, the acute bone loss resulting from such clinical pictures may be superimposed on to the natural course of bone loss occurring in many postmenopausal women. Salmon calcitonin, a potent inhibitor of osteoclast activity, has been shown to prevent bone loss in all clinical models of acute bone loss due to increased bone turnover and osteoclastic resorption. In addition, salmon calcitonin has a potent analgesic effect, thereby causing a reduction in bone pain and improvement in functional capacity. For these reasons, calcitonin remains a first-line therapy in bone loss related to a hyper-resorptive state.
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Thirty pagetic patients were treated for 6 months with a daily nasal application of 2 mg of synthetic human calcitonin (hCT). Serum alkaline phosphatases (SAP) and urinary hydroxyproline/creatinine ratio (OH/Cr), reflecting bone turnover, were significantly reduced from the first month of treatment (mean +/- SEM: SAP, -13.9 +/- 2.2%; OH/Cr, -22.2 +/- 5.8%; both P less than 0.01) and until the end of the 6-month course (mean +/- SEM: SAP, -29.7 +/- 4.6%; OH/Cr, -22.5 +/- 5.9%; both P less than 0.01). Nasal hCT was perfectly tolerated both locally and systemically. These results allow us to consider nasal hCT for long-term trials in metabolic bone diseases characterized by a relative increase of bone resorption.
Calcitonin is now a well-accepted therapy for inhibition of bone loss, both in the first years of menopause and in established osteoporosis. However, its exact role in the pathogenesis of that disease as well as the interactions between calcitonin production and estrogen metabolism remain unsolved. In order to clarify the influence of estrogen replacement therapy (ERT) on calcitonin secretory capacity, we measured whole plasma immunoreactive calcitonin basal levels, metabolic clearance rates and production rates in a group of postmenopausal women, before and after a daily intake for 28 days of 0.625 mg/day of conjugated equine estrogens, and again 4 weeks after the withdrawal of that estrogen replacement therapy. No significant changes appeared in immunoreactive calcitonin or immunoreactive calcitonin metabolic clearance rate but the production rate significantly increased over the 28 days (mean +/- SEM, from 21.3 +/- 5.1 pg/ml to 25.2 +/- 5.9 pg/ml, p less than 0.05), and then decreased 4 weeks after therapy was withdrawn to the initial level (17.9 +/- 3.6 pg/ml). We concluded that estrogen replacement therapy significantly increases calcitonin secretory capacity. This confirms the interactions between calcitonin production and estrogen metabolism, and may provide an explanation concerning the mode of action of estrogen replacement therapy in prevention of postmenopausal bone loss.
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Bone mineral content (BMC) and bone mineral density (BMD) of lumbar spine have been measured in 695 healthy postmenopausal and 64 type I osteoporotic Belgian, Caucasian females. Bone loss is strongly correlated to time elapse from menopause (Tm) with a maximum rate of bone loss during the first five years of menopause. BMC (gHA) = 461 + 0.662 ln Tm -0.481 (ln Tm)2 and BMD (gHA/cm2) = 0.91 + 0.00711 ln Tm - 0.00846 (ln Tm)2 (in both cases p less than 0.001 and Tm expressed in months of menopause). After 20 years of menopause, 50 to 60% of normal women have vertebral BMC and BMD values below the 90th percentile of women with vertebral fractures and, thus, might be considered to have asymptomatic osteoporosis. We conclude that prevention of postmenopausal osteoporosis should be initiated as soon as possible after the onset of menopause and that bone density screening should be extended in elderly in order to detect and allow treatment of asymptomatic "densitometric" osteoporosis.
In order to establish the role of calcitonin (CT) in postmenopausal bone loss, we studied CT metabolism in 25 pre- and postmenopausal women. Postmenopausal women presented a highly significant reduction of CT basal levels compared to premenopausal females (p less than 0.01). Also, production rates of CT in osteoporotics were significantly lower than in either young premenopausal (18-25 years old), older premenopausal (35-40 years old), or postmenopausal healthy subjects. In a study in rabbits, we found that injection of CT, along with equimolar amounts of anti-SCT antibodies extracted from serum of pagetic patients, did not inhibit the hypocalcemic response to the hormone, thus demonstrating that resistance to CT treatment cannot be accounted for by antibody production. In a subsequent clinical study in patients with Paget's disease of bone, we found that 200 IU/day of salmon CT (SCT), given by nasal spray, improved both clinically and biochemically the activity of the disease, as demonstrated by 37 +/- 4% decrease of serum alkaline phosphatase and 35 +/- 5% fall of urinary excretion of hydroxyproline after six months of therapy. The effectiveness of CT as nasal spray was further tested in healthy women at an early stage of menopause. A 12-month course of intranasal SCT counteracted early postmenopausal bone loss, presumably by inhibiting bone resorption. In conclusion, intranasal CT seems to be a very attractive alternative to be considered for the prevention of postmenopausal osteoporosis.
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