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T J Wronski

Publications and source records attributed to T J Wronski.

At least 19 recordsLinked to original sources

A comparative study of the bone-restorative efficacy of anabolic agents in aged ovariectomized rats.

INTRODUCTION: The study was designed to compare the bone anabolic effects of basic fibroblast growth factor (bFGF), a selective agonist for prostaglandin E receptor subtype EP4, and parathyroid hormone (PTH) in aged ovariectomized (OVX) rats with severe cancellous osteopenia. METHODS: Groups of aged OVX rats were maintained untreated for 1 year postovariectomy (15 months of age) to develop severe tibial cancellous osteopenia. These animals were then treated with bFGF or the EP4 agonist (EP4) for 3 weeks. Other groups of aged OVX rats were treated with EP4 or PTH alone for 11 weeks, or sequentially with bFGF or EP4 for 3 weeks followed by PTH for 8 weeks. Cancellous and cortical bone histomorphometry were performed in the right proximal tibial metaphysis and tibial diaphysis respectively. RESULTS: Treatment with bFGF for 3 weeks markedly increased serum osteocalcin, osteoid volume, and osteoblast and osteoid surfaces to a greater extent than EP4. Basic FGF, but not EP4 or PTH, induced formation of osteoid islands within bone marrow. EP4 stimulated cancellous bone turnover, but failed to restore lost cancellous bone in the severely osteopenic proximal tibia after 11 weeks of treatment. In contrast, EP4, much like PTH, increased cortical bone mass in the tibial diaphysis by stimulating both periosteal and endocortical bone formation. Treatment of aged OVX rats with PTH alone tended to partially reverse the severe tibial cancellous osteopenia, whereas sequential treatment with bFGF and PTH increased tibial cancellous bone mass to near the level of vehicle-treated control rats. These findings indicate that bFGF had the strongest stimulatory effect on cancellous bone formation, and was the only anabolic agent to induce formation of osteoid islands within the bone marrow of the severely osteopenic proximal tibia. Therefore, bFGF may be more effective for the reversal of severe cancellous osteopenia. PTH and EP4 increased cortical bone mass to nearly the same extent, but cancellous bone mass was greater by two-fold in PTH-treated OVX rats than in EP4-treated OVX rats. CONCLUSION: These findings in aged OVX rats suggest that PTH is more efficacious than EP4 for augmentation of cancellous bone in the severely osteopenic, estrogen-deplete skeleton.

Animals↗

Skeletal phenotype of growing transgenic mice that express a function-perturbing form of beta1 integrin in osteoblasts.

Skeletal modeling entails the deposition of large amounts of extracellular matrix (ECM) to form structures tailored to withstand increasing mechanical loads during rapid growth. Specific ECM molecules bind to integrin receptors on the cell surface, thereby triggering a cascade of signaling events that affect critical cell functions. To evaluate the role of integrins during skeletal growth, transgenic mice were engineered to express a function-perturbing fragment of beta1 integrin consisting of the transmembrane domain and cytoplasmic tail under the control of the osteocalcin promoter (TG mice). Thus, transgene expression was targeted to mature cells of the osteoblast lineage, and herein we show that cultured cells resembling osteocytes from 90-day-old TG mice display impaired adhesion to collagen I, a ligand for beta1 integrin. To determine the influence of beta1 integrin on bones that are responsible for providing structural support during periods of rapid growth, we examined the phenotype of the appendicular skeleton in TG mice compared to wild type (WT) mice. According to radiographs, bones from mice of both genotypes between 14 and 90 days of age appeared similar in gross structure and density, although proximal tibiae from 35-90 days old TG mice were less curved than those of WT mice (72-92% TG/WT). Although there were only mild and transient differences in absolute bone mass and strength, once normalized to body mass, the tibial dry mass (79.1% TG/WT females), ash mass (78.5% TG/WT females), and femoral strength in torsion (71.6% TG/WT females) were reduced in TG mice compared to WT mice at 90 days of age. Similar effects of genotype on bone mass and curvature were observed in 1-year-old retired breeders, indicating that these phenotypic differences between TG and WT mice were stable well into adulthood. Effects of genotype on histomorphometric indices of cancellous bone turnover were minimal and evident only transiently during growth, but when present they demonstrated differences in osteoblast rather than osteoclast parameters. Together, these results suggest that integrin signals generated during growth enhance the acquisition of a skeletal mass, structure, and strength to withstand the mechanical loads generated by weight-bearing.

Animals↗

Effects of disrupted beta1-integrin function on the skeletal response to short-term hindlimb unloading in mice.

The study was designed to determine whether beta1-integrin plays a role in mediating the acute skeletal response to mechanical unloading. Transgenic (TG) mice were generated to express a dominant negative form of beta1-integrin under the control of the osteocalcin promoter, which targets expression of the transgene to mature osteoblasts. At 63 days of age, wild-type (WT) and TG mice were subjected to hindlimb unloading by tail suspension for 1 wk. Pair-fed, normally loaded WT and TG mice served as age-matched controls. Bone samples from each mouse were processed for quantitative bone histomorphometry and biomechanical testing. The skeletal phenotype of TG mice was characterized by lower cancellous bone mass in the distal femoral metaphysis (-52%) and lumbar vertebral body (-20%), reduced curvature of the proximal tibia (-20%), and decreased bone strength (-20%) and stiffness (-23%) of the femoral diaphysis with relatively normal indexes of cancellous bone turnover. Hindlimb unloading for only 1 wk induced a 10% decline in tibial curvature and a 30% loss of cancellous bone in the distal femur due to a combination of increased bone resorption and decreased bone formation in both WT and TG mice. However, the strength and stiffness of the femoral diaphysis were unaffected by short-term hindlimb unloading in both genotypes. The observed increase in osteoclast surface was greater in unloaded TG mice (92%) than in unloaded WT mice (52%). Cancellous bone formation rate was decreased in unloaded WT (-29%) and TG (-15%) mice, but, in contrast to osteoclast surface, the genotype by loading interaction was not statistically significant. The results indicate that altered integrin function in mature osteoblasts may enhance the osteoclastic response to mechanical unloading but that it does not have a major effect on the development of cancellous osteopenia in mice during the early stages of hindlimb unloading.

Animals↗

Basic fibroblast growth factor has rapid bone anabolic effects in ovariectomized rats.

Basic fibroblast growth factor (bFGF) has a strong bone anabolic effect in intact and ovariectomized (OVX) rats treated for 7-14 days. Other growth factors such as IGF-I and TGF-beta have been implicated as potential mediators for this effect. The purpose of this study was to examine the early effects of bFGF therapy, in vivo, on bone formation and gene expression in OVX rats in order to determine whether upregulation of gene expression for IGF-I and/or TGF-beta precedes or coincides with the stimulatory effects of bFGF on bone formation. At 3 months of age, Sprague Dawley rats were OVX or sham-operated (SHAM), then maintained untreated for 3 months. One group of baseline OVX rats (BSL OVX) and BSL SHAM rats were then killed. Additional OVX groups were treated IV with bFGF at a daily dose of 200 microg/kg and killed at 1-7 and 10 days. Another group of OVX rats was treated IV with vehicle daily for 10 days, then killed. Lumbar vertebrae were processed for cancellous bone histomorphometry or RNA isolation. Ovariectomy induced increased cancellous bone turnover and a significant decrease in vertebral bone mass. Treatment of OVX rats with bFGF resulted in a significant increase in bone formation. As early as 24 h after bFGF treatment of OVX rats, osteoblast surface, osteoid surface, and osteoid volume were more than double those in BSL OVX rats and continued to increase with time. These variables were also significantly higher in bFGF-treated OVX rats at 10 days compared with vehicle-treated OVX rats. Gene expression for IGF-I was not different between BSL OVX rats and bFGF-treated OVX rats at 1 day, but was significantly higher by approximately 50% in OVX rats treated with bFGF for 2 and 7 days, and was also significantly higher by nearly 75% in OVX rats treated for 10 days compared with OVX rats treated with vehicle. Gene expression for TGF-beta1 was unchanged at early times and only significantly upregulated by a relatively modest 30% in OVX rats treated with bFGF for 10 days. The results indicate that the bone anabolic effects of bFGF in OVX rats begin as early as 24 h following the initial treatment, and increase with time. These early stages of the strong stimulatory effect of bFGF on bone formation were not associated with a large upregulation of gene expression for IGF-I and TGF-beta. The rapid increase in osteoblast surface in bFGF-treated OVX rats suggests that the growth factor induces conversion of bone lining cells to osteoblasts.

Animals↗

Bone anabolic effects of subcutaneous treatment with basic fibroblast growth factor alone and in combination with estrogen in osteopenic ovariectomized rats.

Although basic fibroblast growth factor (bFGF) is a potent stimulator of bone formation when administered intravenously, less is known regarding the effects of this peptide on bone following subcutaneous (s.c.) administration. In addition, it is unknown whether coadministration of estrogen enhances the bone response to treatment with bFGF. Therefore, the purpose of this study was (1) to characterize the skeletal response to s.c. injection of a high dose of bFGF, and (2) to determine whether concurrent administration of estrogen affects the skeletal response to bFGF treatment. Female Sprague-Dawley rats were ovariectomized (ovx) or sham-operated (sham) at 3 months of age and left untreated for 2 months to establish cancellous osteopenia in the ovx group. The sham rats (n=10) and one group of ovx rats (n=9) were then injected s.c. with vehicle alone for 3 weeks. Two additional groups of ovx rats were injected s.c. with bFGF (n=10) or with bFGF + estrogen (n=10) for 3 weeks. bFGF was administered s.c. at a daily dose of 1 mg/kg/day and estrogen was administered s.c. 4 days per week at a dose of 10 microg/kg for the 3-week duration of treatment. Lumbar vertebrae were collected and processed undecalcified for quantitative bone histomorphometry. Cancellous bone volume was lower and cancellous bone turnover was higher in vehicle-treated ovx rats than in vehicle-treated sham rats. Subcutaneous treatment of ovx rats with bFGF for 3 weeks resulted in a 4-fold increase in osteoblast surface and an 8-fold increase in osteoid surface in comparison to vehicle treatment of ovx rats. Osteoid volume was also markedly increased in the bFGF-treated ovx rats (7 +/- 4%) in comparison to vehicle-treated ovx rats (<0.1%). Osteoblast surface, osteoid surface, and osteoid volume were nearly identical in ovx rats treated with bFGF alone and with bFGF + estrogen. Although the majority of the osteoid in bFGF- and bFGF + estrogen-treated animals was deposited along mineralized bone surfaces, osteoid spicules without any connections to preexisting bone surfaces were also detected, providing definitive proof for bone formation within bone marrow in response to bFGF administration. Osteoclast surface, an index of bone resorption, was not affected by bFGF treatment. However, cotreatment of ovx rats with bFGF + estrogen resulted in lower osteoclast surface in comparison to treatment of ovx rats with either vehicle or bFGF alone. In summary, these findings indicate that administration of a high dose of bFGF via s.c. injection markedly increases bone formation and may be a useful treatment for cancellous osteopenia in the estrogen-deplete skeleton. The anabolic effects of bFGF on bone are not enhanced by concurrent treatment with estrogen at the replacement dose used in this study.

Animals↗

Changes in gene expression associated with the bone anabolic effects of basic fibroblast growth factor in aged ovariectomized rats.

Basic fibroblast growth factor (bFGF) stimulates bone formation in vitro and in vivo. The purpose of this study was to determine changes in gene expression for bone matrix proteins, growth factors, and cytokines associated with the stimulatory effects of bFGF on bone formation in aged ovariectomized (ovx) rats. At 3 months of age, female Sprague-Dawley rats were sham-operated (sham) or ovariectomized (ovx), then maintained untreated for 1 year. At 15 months of age, baseline (BSL) sham and ovx rats were killed. All other rats received daily intravenous injections of bFGF (200 microg/kg) or vehicle (veh) for 14 days. Lumbar vertebrae were processed for quantitative bone histomorphometry or molecular analyses. Ovariectomy decreased vertebral cancellous bone volume by approximately 33% and increased most indices of bone turnover. Treatment of aged ovx rats with bFGF for only 14 days significantly increased cancellous bone volume compared with vehicle treatment of ovx rats, but this variable remained lower than in sham + veh rats. Osteoid volume, osteoblast surface, and osteoid surface were markedly increased, and osteoclast surface was significantly decreased in ovx + bFGF rats compared with sham + veh and ovx + veh rats. Northern analyses revealed that mRNA levels for osteocalcin and type I collagen, relative to 18S RNA, were significantly higher in ovx + bFGF rats than in ovx + veh rats by a factor of >10. RNase protection assays revealed that insulin-like growth factor (IGF-I) mRNA levels, relative to L32 housekeeping gene, were also significantly higher, by nearly a factor of 3, in ovx + bFGF rats than in ovx + veh rats. Treatment of ovx rats with bFGF did not appear to affect message levels for transforming growth factor-beta (TGF-beta), interleukin-6 (IL-6), and interferon-gamma (IFN-gamma). These in vivo results suggest that bFGF treatment upregulates gene expression for IGF-I, which may mediate, at least in part, the increased gene expression for bone matrix proteins and the bone anabolic effects of bFGF in aged ovx rats.

Aging↗

Sequential treatment with basic fibroblast growth factor and PTH is more efficacious than treatment with PTH alone for increasing vertebral bone mass and strength in osteopenic ovariectomized rats.

The study was designed 1) to determine whether treatment with basic fibroblast growth factor (bFGF) and PTH is more efficacious than treatment with PTH alone for increasing bone mass and strength and improving trabecular microarchitecture in osteopenic ovariectomized rats, and 2) to assess whether prior and concurrent administration of the antiresorptive agents estrogen and risedronate suppresses the bone anabolic response to treatment with bFGF alone and sequential treatment with bFGF and PTH. Three-month-old female Sprague Dawley rats were ovariectomized (OVX) or sham-operated (sham) and maintained untreated for 1 yr. Baseline sham and OVX rats were killed at this time (15 months of age). Groups of rats were injected sc with estrogen (10 microg/kg, 4 d/wk), risedronate (5 microg/kg, 2 d/wk), or vehicle. At the end of the second week of antiresorptive treatment, catheters were inserted into the jugular veins of all rats, and vehicle or bFGF at a dose of 250 microg/kg was injected daily for 14 d. Three groups of rats were killed at the end of bFGF treatment. The remaining rats were continued on their respective antiresorptive therapy and injected sc with vehicle or synthetic human PTH-(1-34) at a dose of 80 microg/kg, 5 d/wk, for 8 wk. Lumbar vertebrae were processed for cancellous bone histomorphometry and biomechanical testing. Ovariectomy resulted in a decrease in vertebral bone mass and strength. Treatment of OVX rats for 14 d with bFGF markedly increased osteoblast surface, osteoid surface, and osteoid volume compared with vehicle treatment of sham and OVX rats. Furthermore, osteoid bridges were observed extending between preexisting trabeculae in bFGF-treated OVX rats. Prior and concurrent administration of estrogen and risedronate did not suppress these bone anabolic effects of bFGF. Treatment of OVX rats with PTH alone increased vertebral cancellous bone mass and strength to the level of vehicle-treated sham rats. Sequential treatment of OVX rats with bFGF and PTH further augmented vertebral bone mass and strength to a level above that observed in OVX rats treated with PTH alone. The improvements in bone mass and strength were associated with an increase in trabecular thickness in OVX rats treated with PTH alone and with an increase in trabecular thickness and node to terminus ratio, an index of trabecular connectivity, in OVX rats treated sequentially with bFGF and PTH. Cotreatment with estrogen and risedronate did not suppress the anabolic response of bone to bFGF and PTH. In fact, a trend for an even greater increase in cancellous bone mass and node to terminus ratio was observed in OVX rats treated with risedronate, bFGF, and PTH. These findings indicate that sequential treatment with bFGF and PTH is more efficacious than treatment with PTH alone for increasing bone mass and strength and improving trabecular microarchitecture in osteopenic OVX rats.

Aging↗

Decreased bone anabolic effect of basic fibroblast growth factor at fatty marrow sites in ovariectomized rats.

The purpose of the study was to compare the bone anabolic effects of basic fibroblast growth factor (bFGF) at hematopoietic (red) and fatty (yellow) marrow sites in ovariectomized (ovx) rats. Female Sprague Dawley rats were subjected to ovariectomy or sham surgery at 3 months of age and maintained untreated for 2 months after surgery. Three groups of ovx rats were then injected intravenously with bFGF for 14 days at a dose of 200 microg/kg body weight. One group of bFGF-treated OVX rats was killed at the end of the treatment period, whereas the other two groups were killed at 7 or 14 days after withdrawal of bFGF treatment. Another group of ovx rats and a group of sham-operated control rats were treated intravenously with vehicle alone for 14 days. The proximal tibia and first lumbar vertebra, bone sites with hematopoietic marrow, as well as the distal tibia and caudal vertebra, bone sites with primarily fatty marrow, were processed undecalcified for quantitative bone histomorphometry. At the hematopoietic marrow sites, bFGF treatment induced a marked accumulation of osteoid, which calcified during the withdrawal period to result in a significant increase in cancellous bone volume. Osteoblast and osteoid surfaces were increased by at least a factor of 10 at these sites in bFGF-treated ovx rats before declining rapidly during the withdrawal period. In contrast, osteoid volume was negligible in the fatty marrow sites of bFGF-treated ovx rats. Although these animals exhibited a nonsignificant trend for increased cancellous bone volume in the fatty distal tibia during the withdrawal period, no such trend was observed in the fatty caudal vertebra. Indices of bone formation (osteoblast and osteoid surfaces) were significantly increased by bFGF treatment in the fatty distal tibia, which retained some small pockets of hematopoietic cells, but not to the same great extent as in the skeletal sites with hematopoietic marrow. Furthermore, not even a trend for increased osteoblast and osteoid surfaces was observed in the fatty caudal vertebra of bFGF-treated ovx rats. These findings indicate that bFGF is a strong bone anabolic agent at skeletal sites with hematopoietic marrow, but the stimulatory effects of the growth factor on bone formation are greatly attenuated at fatty marrow sites.

Adipose Tissue↗

Sequential treatment with basic fibroblast growth factor and parathyroid hormone restores lost cancellous bone mass and strength in the proximal tibia of aged ovariectomized rats.

This study was designed to determine whether sequential treatment with basic fibroblast growth factor (bFGF) and parathyroid hormone (PTH) can restore lost cancellous bone mass and strength at a severely osteopenic skeletal site in aged ovariectomized (OVX) rats. Female Sprague-Dawley rats were subjected to sham surgery or ovariectomy at 3 months of age and maintained untreated for the first year after surgery. At 15 months of age, groups of baseline control and OVX rats were killed and catheters were inserted in the jugular veins of all remaining rats. Two groups of OVX rats were injected intravenously (iv) daily with bFGF for 14 days at a dose of 200 microg/kg body weight. At the end of bFGF treatment, one group was killed whereas the other group was subjected to 8 weeks of treatment with synthetic human PTH 1-34 [hPTH(1-34)] consisting of subcutaneous (sc) injections 5 days/week at a dose of 80 microg/kg. Another group of OVX rats was treated iv with vehicle for 2 weeks followed by treatment with PTH alone for 8 weeks. Other groups of sham-operated control rats and OVX rats were treated iv and sc with vehicle alone. The right proximal tibia from each rat was processed undecalcified for quantitative bone histomorphometry and the left proximal tibia was subjected to biomechanical testing. Baseline and vehicle-treated OVX rats were severely osteopenic because their tibial cancellous bone volumes were less than 5% compared with mean values of 20.3% and 15.0% in baseline and vehicle-treated control rats, respectively. Treatment of OVX rats for 2 weeks with bFGF alone did not significantly increase tibial cancellous bone volume but induced marked increases in osteoid volume, osteoblast surface, and osteoid surface. Sequential treatment of aged OVX rats with bFGF and PTH increased tibial cancellous bone volume (15.1%) and load to failure to at least the level of vehicle-treated control rats. Tibial cancellous bone volume (10.8%) and load to failure also were significantly increased by treatment with PTH alone, and these variables were not significantly different from those of OVX rats treated with bFGF + PTH. However, tibial ash density was significantly greater in OVX rats treated sequentially with bFGF and PTH compared with OVX rats treated with PTH alone. Our findings suggest that sequential treatment with bFGF and PTH may be useful for restoration of lost cancellous bone in the severely osteopenic, estrogen-deplete skeleton, but it cannot be concluded with certainty that this sequential treatment has a greater bone restorative effect than treatment with PTH alone.

Aging↗

Spaceflight alters bone mechanics and modeling drifts in growing rats.

BACKGROUND: Alterations in bone metabolism may be a particularly serious consequence of spaceflight and a major obstacle to long-term space exploration. The effects of spaceflight on bone mechanics are unclear. This study examined the effects of spaceflight on bone mechanics in a growing rat model during a 17-d mission aboard the space shuttle (STS-78). METHODS: There were 18 rats that were divided into 3 experimental groups: flight rats (n = 6), ground-based control rats housed in an animal enclosure module (AEM, n = 6), and ground-based control rats housed in standard vivarium caging (n = 6). At the conclusion of the mission, rat femurs were tested in three-point bending followed by static and dynamic bone histomorphometry. RESULTS: Maximum stress was unaffected by spaceflight, but flexural rigidity was significantly decreased in flight animals. Much of the decrease appeared to be the result of decreases in tissue properties (elastic modulus) rather than structural changes within the bone. No significant differences in cortical bone mass or geometry were observed. In contrast, endocortical resorption was significantly decreased in flight rats accompanied by a nonsignificant decrease in periosteal bone formation, suggesting alterations in bone modeling drifts during spaceflight. For nearly all measured indices, ground-based AEM rats displayed values intermediate to flight and ground-based vivarium rats. CONCLUSIONS: Spaceflight can impair tissue properties in femoral cortical bone during growth without significant decreases in bone mass or geometry.

Adaptation, Physiological↗

Skeletal effects of systemic treatment with basic fibroblast growth factor.

Systemic treatment of intact and ovariectomized rats with basic fibroblast growth factor (bFGF) has strong bone anabolic effects. These effects include marked increases in osteoblast number and activity along cancellous and endocortical bone surfaces, which result in accumulation of osteoid and augmentation of cancellous and cortical bone mass after only short-term treatment with bFGF. Osteoclast surface is markedly decreased in bFGF-treated rats, but this finding may be secondary to the extensive osteoid surface in these animals. Some undesirable skeletal effects of the growth factor include impaired bone mineralization and formation of structurally inferior woven bone. The lack of a bone anabolic response to bFGF at skeletal sites with fatty marrow and along the periosteal surface of cortical bone is also disappointing. Despite these disadvantages, bFGF stimulates cancellous bone formation to such a great extent that it may eventually be considered for use in patients with severe osteoporosis who are unresponsive to conventional therapies, provided that local delivery of the growth factor to bone can be achieved to avoid systemic side effects.

Journal Article↗

Anabolic effects of basic fibroblast growth factor in the tibial diaphysis of ovariectomized rats.

The purpose of this study was to determine the effects of basic fibroblast growth factor (bFGF) on cortical bone in ovariectomized (ovx) rats. Female Sprague-Dawley rats were subjected to sham surgery or ovariectomy at 3 months of age and maintained untreated for 2 months after surgery. Polyurethane catheters were then inserted in the jugular veins of all rats for daily intravenous treatments with vehicle or bFGF at doses of 100 or 200 microg/kg for 7 or 14 days. Other groups of ovx rats were killed at 7 or 14 days after withdrawal of treatment with the higher dose of bFGF. Quantitative bone histomorphometry was performed in undecalcified cross sections of the tibial diaphysis. Cortical bone area was nearly the same in vehicle-treated control and ovx rats, but a small, statistically significant increase in this structural variable was observed in ovx rats treated with both doses of bFGF. This small increase in cortical bone area was maintained at 7 days after withdrawal of bFGF treatment. Fluorochrome-based analyses of periosteal and endocortical bone formation were inconclusive due to an inhibitory effect of bFGF on bone mineralization. However, a marked increase in fluorescent bone area was observed within the marrow cavity of bFGF-treated OVX rats during the withdrawal period. The results indicate that treatment of OVX rats with bFGF for only 7 to 14 days augments cortical bone mass and induces formation of bone spicules within the marrow cavity of the tibial diaphysis. These bone anabolic effects of the growth factor support its consideration as a potential osteoporosis therapy.

Animals↗

Mandibular bone formation rates in aged ovariectomized rats treated with anti-resorptive agents alone and in combination with intermittent parathyroid hormone.

Anti-resorptive agents--including estrogen (E), calcitonin (CT), and bisphosphonates--are established in the treatment of osteoporosis. Intermittent administration of parathyroid hormone (PTH) stimulates bone formation and is a possible therapeutic agent for the restoration of bone mass. The purpose was to determine the effects of the anti-resorptive agents alone and in combination with intermittent PTH on bone formation in the mandible and a long bone in the aged ovariectomized (Ovx) rat. Female rats were ovariectomized or sham-operated. One year later, groups of Ovx rats were treated with E, CT, or the bisphosphonate, Risedronate (NE). Additional groups of Ovx rats were treated with each of these agents in combination with human PTH for 10 weeks. Estrogen treatment suppressed most indices of bone formation in the humerus and mandible, while NE decreased some indices of formation at the endocortical and endosteal surfaces of the mandible and humerus. Increased double-labeled surface and mineral apposition rates were observed only on the mandibular endosteal surfaces following CT treatment. When the anti-resorptive agents were combined with intermittent PTH, most indices of bone formation at all skeletal sites were substantially greater than those of the untreated Ovx controls as well as the E-, CT-, and NE-treated groups, respectively. These results provide additional evidence that established and emerging therapies for osteoporosis affect osseous tissues in the oral cavity, and this may influence the progression of diseases and/or aging changes at this site.

Analysis of Variance↗

Histologic changes in the adrenal cortex from young rats following spaceflight.

BACKGROUND: Potential stresses associated with spaceflight include microgravity, acceleration and deceleration forces, a crowded environment and re-adaptation to normal gravity after landing. HYPOTHESIS: We hypothesized that spaceflight would result in histological changes in the adrenal glands of young rats. METHODS: Six week old male rats were group-housed in an Animal Enclosure Module (AEM) for a 17 d shuttle flight (STS-78). Ground-based controls included a baseline group, an AEM-housed group and a vivarium group. Adrenal glands were collected from 4-6 hours after flight, fixed, embedded in plastic and sections prepared for light microscopy. RESULTS: The adrenals from the baseline and vivarium groups had normal histological features. Some changes in the adrenal cortices from the ground-based AEM group included greater parenchymal cord-like formation. The adrenal weights and width of the zona fasciculata were greater in the flight group than the controls. There were also increased parenchymal cord-like formation with better demarcation of the vascular sinusoids in the zona reticularis and zona fasciculata, greater depletion of cytoplasmic lipid vacuoles, and an increased nuclear volume of the cells in the zona fasciculata when compared with the controls. CONCLUSIONS: The adrenal changes in the ground-based AEM animals may be attributed to the confined space in the AEM. The adrenal enlargement and the histological changes observed in the flight animals may be attributed to spaceflight and possibly re-entry in addition to possible confinement stress in the AEM.

Adrenal Cortex↗

Parathyroid hormone stimulates cancellous bone formation at skeletal sites regardless of marrow composition in ovariectomized rats.

The purpose of the current report is to compare the skeletal effects of PTH treatment at red (hematopoietic) and yellow (fatty) marrow sites in ovariectomized (ovx) rats. In the first study, mature, slowly growing ovx rats that were 4 months of age and 4 weeks postovariectomy were treated with human parathyroid hormone [hPTH(1-34)] (80 microg/kg, 5 days/week) for 6 weeks. In the second study, aged ovx rats that were 15 months of age and 1 year postovariectomy were treated with PTH according to the same regimen for 10 weeks. The proximal tibial metaphysis (PTM) and first lumbar vertebra (LV), bone sites with red marrow, as well as the distal tibial metaphysis (DTM) and fifth caudal vertebra (CV), bone sites with yellow marrow, were processed undecalcified for quantitative bone histomorphometry. At the end of the first study in mature ovx rats, estrogen depletion induced a 73% loss of cancellous bone in the PTM and a 15% loss in the LV. In contrast, not even a trend for cancellous bone loss was observed in the DTM and CV of vehicle-treated ovx rats. PTH treatment of ovx rats increased cancellous bone volume by 191% in the PTM, 56% in the DTM, 47% in the LV, and 22% in the CV, compared with vehicle treatment of ovx rats. In addition, the hormone markedly increased cancellous bone formation by 177% in the PTM, 679% in the DTM, 309% in the LV, and 833% in the CV. Aged ovx rats (second study) exhibited moderate cancellous osteopenia in the LV but not the CV. PTH treatment increased cancellous bone volume by 67% and 37% and bone formation rate by 635% and 359% in the LV and CV, respectively, compared with vehicle treatment of ovx rats. Although the magnitude of the anabolic response to PTH may vary somewhat within the skeleton, the results indicate that PTH augments cancellous bone mass and markedly stimulates bone formation at skeletal sites, regardless of marrow composition.

Animals↗

Effects of age, estrogen depletion, and parathyroid hormone treatment on vertebral cancellous wall width in female rats.

The main goal of this study was to determine whether vertebral cancellous wall width changes with age and parathyroid hormone (PTH) treatment in rats. Female Sprague-Dawley rats were subjected to sham surgery or ovariectomy at 3 months of age. One month after surgery, ovariectomized (ovx) rats were injected subcutaneously (s.c.) 5 days/week for 6 weeks with vehicle or human parathyroid hormone [hPTH (1-34)] at a dose of 80 microg/kg body weight. Sham-operated control rats were injected s.c. with vehicle alone. All rats from this first study were 5.5 months of age at the time of killing. In the second study, control and ovx rats were subjected to the same treatments for a 10-week period beginning at one year after surgery. These animals were 17.5 months of age at the end of the study. The first lumbar vertebra was collected from each rat and processed undecalcified for measurements of cancellous wall width. At 5.5 months of age, control and ovx rats had nearly identical mean values for vertebral cancellous wall width, but this remodeling variable was significantly increased in PTH-treated ovx rats. At 17.5 months of age, wall width in control and ovx rats decreased significantly compared with wall width in the younger rats. PTH treatment of aged ovx rats induced a significant increase in vertebral cancellous wall width when compared with vehicle treatment of aged ovx rats. These results, which are consistent with findings in humans, indicate that vertebral cancellous wall width decreases with age in intact female rats and in ovx rats, but increases in ovx rats in response to PTH treatment. Furthermore, the results add to the growing body of evidence that substantial cancellous bone remodeling occurs in the vertebral bodies of rats.

Aging↗

Bone and hormonal changes induced by skeletal unloading in the mature male rat.

To determine whether the rat hindlimb elevation model can be used to study the effects of spaceflight and loss of gravitational loading on bone in the adult animal, and to examine the effects of age on bone responsiveness to mechanical loading, we studied 6-mo-old rats subjected to hindlimb elevation for up to 5 wk. Loss of weight bearing in the adult induced a mild hypercalcemia, diminished serum 1,25-dihydroxyvitamin D, decreased vertebral bone mass, and blunted the otherwise normal increase in femoral mass associated with bone maturation. Unloading decreased osteoblast numbers and reduced periosteal and cancellous bone formation but had no effect on bone resorption. Mineralizing surface, mineral apposition rate, and bone formation rate decreased during unloading. Our results demonstrate the utility of the adult rat hindlimb elevation model as a means of simulating the loss of gravitational loading on the skeleton, and they show that the effects of nonweight bearing are prolonged and have a greater relative effect on bone formation in the adult than in the young growing animal.

Aging↗

Estrogen has rapid tissue-specific effects on rat bone.

The decrease in cancellous bone formation after estrogen treatment is generally thought to be coupled with a prior decrease in bone resorption. To test the possibility that estrogen has rapid tissue-specific actions on bone metabolism, we determined the time course (1-32 h) effects of diethylstilbestrol on steady-state mRNA levels for immediate-response genes, extracellular matrix proteins, and signaling peptides in the proximal tibial metaphysis and uterus by using Northern blot and RNase protection assays. The regulation of signaling peptides by estrogen, although tissue specific, followed a similar time course in bone and uterus. The observed rapid decreases in expression of insulin-like growth factor I, a growth factor associated with bone formation; decreases in mRNA levels for bone matrix proteins; evidence for reduced bone matrix synthesis; failure to detect rapid increases in mRNA levels for signaling peptides implicated in mediating the inhibitory effects of estrogen on bone resorption (interleukin-1 and -6) as well as other cytokines that can increase bone resorption; and the comparatively long duration of the bone remodeling cycle in rats indicate that estrogen can decrease bone formation by a mechanism that does not require a prior reduction in bone resorption.

Animals↗