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At least 19 recordsLinked to original sources

Osteogenic capacities of periost grafts, periost flaps and prefabricated periosteal flaps: experimental study.

Reconstruction of the bone defects due to various causes is still one of the challenging problems in plastic and reconstructive surgery. Periosteum is accepted to be the essential source for the repair of the bone tissue, which constitutes the basis of the support and the mobility functions of the surrounding tissues. Periosteal grafts and flaps have been used for various purposes by numerous techniques. The osteogenic activity of the periosteal tissues has a great importance regarding the purposes of reconstruction. In this experimental study, 20 New Zealand rabbits were used for the evaluation and the comparison of the osteogenic activities of periosteal grafts, periosteal flaps and prefabricated periosteal flaps. Morphological, histopathological and scinthigraphical observations were carried out for the assessment and the comparison of the groups after a follow-up of 12 weeks. Two of the animals were left out as a result of infection. The results showed that periosteal flaps had a much faster and more stable reconstructive capacity of osteogenesis, whereas prefabricated periosteal flaps had an osteogenic capacity of a lower degree and periosteal grafts apparently less than the former groups. We believe that this study confirms the reconstructive capacity of prefabricated periosteal flaps as an alternative to periosteal flaps for the repair of osseous tissues as well as indicating the osteogenic capacity of the periosteal grafts, though in a lesser degree.

Animals↗

Periosteal chondroma and periosteal chondrosarcoma.

A clinicopathologic study of 46 patients with periosteal chondroma and 14 patients with periosteal chondrosarcoma revealed that periosteal chondroma tended to affect younger patients and that the lesion was usually smaller. Radiographically, the typical periosteal chondroma was a small, well-marginated tumor on the outer surface of a long bone. Erosion of the cortical surface and marginal buttresses were usually present. Periosteal chondrosarcoma had a more aggressive appearance and was seen as a large mass located superficially on the cortex; the margins of the mass were more irregular than those of chondroma. Histologically, periosteal chondroma frequently showed hypercellularity, plump nuclei, and binucleation. Thus, the differentiation of chondroma from chondrosarcoma is difficult and is based mainly on evidence of invasion. The prognosis in periosteal chondroma is good: only one patient had a local recurrence, none of the tumors underwent malignant change, and excision seems to be curative. However, the prognosis in periosteal chondrosarcoma is not as good: two patients died of metastasis to the lungs after local excision and two patients had recurrences after local resection. Periosteal chondrosarcoma should be treated more aggressively than periosteal chondroma.

Adolescent↗

Periosteal chondrosarcoma and periosteal osteosarcoma. Two distinct entities.

This review of 27 cases serves to emphasis that periosteal chondrosarcoma and periosteal osteosarcoma are two distinct entities. Clinically, periosteal chondrosarcoma is less painful than periosteal osteosarcoma and runs a slower course. Radiographically, periosteal chondrosarcoma tends to affect the metaphysis and contains granular or "popcorn" opacities; while periosteal osteosarcoma more often affects the mid-diaphysis and shows lytic lesions with some spicules of reactive bone perpendicular to the underlying cortex. Histologically, periosteal chondrosarcoma shows lobular well-differentiated cartilage with Grade I or II (rarely Grade III) malignancy; periosteal osteosarcoma has a chondroid matrix with some osteoid component and Grade II or III malignancy. The prognosis in periosteal chondrosarcoma is good; conservative surgery is usually effective and metastases are very uncommon. In periosteal osteosarcoma the prognosis is less satisfactory but is better than that of other osteosarcomata; wide surgical excision is, however, needed and the incidence of metastases is about 15 per cent.

Adolescent↗

Premature fusion of facial sutures with free periosteal grafts. An experimental study with special reference to bone formation with free periosteal grafts from the tibia, the scapula and the calvarium.

The present study was undertaken to obtain more information on the bone forming mechanisms with free periosteal grafts and to study premature synostosis of facial sutures achieved with free periosteal grafts. The results are based on a material of 196 rabbits operated on at the age of two weeks. It was found that the bone forming mechanism with free periosteal grafts from the tibia, the scapula and the calvarium is essentially the same. When implanted in the tibialis anterior muscle of the leg of the same animal they all produced bone. The mechanism of bone formation is reminiscent of the enchondral bone formation seen in fracture healing. There is no difference in the bone forming mechanism with the periosteum from an enchondrally ossifying bone when compared with the periosteum of an intramembranously ossifying bone. In all the three different periosteal grafts studied, there was a cartilage stage before bone formation. In the muscle, all these three periosteal grafts, in spite of their tubular or membranous bone origin, produced bones tubular in shape. When the transplants were overlying the membranaceous facial bones, membrane shaped bone developed via intramembraneceous type of ossification in the recipient area. It can be concluded from these experiments that the shape and type of bone developed with free periosteal grafts depends mainly on the environmental conditions in the recipient area. Fusion of the premaxillo-maxillary and fronto-nasal sutures was achieved with free periosteal grafts from the tibia. Free periosteal grafts from the scapula and the calvarium failed to develop premature fusion of the sutures. The fusion developed due to increased bone formation in the suture area. The fusion of the premaxillo-maxillary suture stopped the growth in this area and caused a severe growth disturbance of the whole snout. The fusion of the fronto-nasal suture by the bone bridge retarded the growth of the nasal bone on the fused side and led to deviation of the snout to the operated side. Compensatory changes developed in other sites of the cranio-facial skeleton in order to minimize the effects of the growth disturbance. The fused fronto-nasal suture was used as a model to study the treatment of premature synostosis of facial bones. Resection of the fused area led to correction of the developed growth disturbance and to subsequent normal growth of the snout.

Animals↗

Microvascular free bone transfer with revascularization of the medullary and periosteal circulation or the periosteal circulation alone. A comparative experimental study.

UNLABELLED: Two different types of vascularized rib grafts presently are used in clinical practice and as experimental models for investigations on free microvascular bone transfer: the posterior rib graft, including both medullary and periosteal blood supply to the bone; and the posterolateral segmental rib graft, supplied by periosteal vessels alone, Complete survival of bone after successful revascularization of the posterior type of graft is well established, but this graft has the disadvantage of a complicated dorsal dissection which has limited its clinical use. Instead, many microsurgeons have utilized the posterolateral rib segment, which is easy and safe to excise although its viability and adequate microcirculation have not yet been confirmed. In nine large dogs, we compared the viability and vascularity of bone after transfer of the two types of bone grafts by histological methods, fluorochrome bone-labeling, microangiography, and technetium scintigraphy. The grafts were transferred to the subcutaneous fat tissue in the groin, where blood supply was reconstituted by microvascular anastomoses to local donor vessels. The results suggest that a bone transplant with revascularization of periosteal only established a collateral circulation to medullary vessels, and that there is no difference in viability of the two kinds of grafts. CLINICAL RELEVANCE: The technique of transferring whole bone segments by microvascular anastomoses of their vascular pedicles has been employed clinically either by preserving the periosteal blood supply alone or by preserving the medullary and the periosteal blood supply. This study demonstrates that the preservation of the periosteal blood supply alone can result in complete bone-graft survival even when the graft is placed in a poorly vascularized tissue bed.

Animals↗

Experimental study of free periosteal autograft. Animals age and periosteal osteogenesis.

This is a study of the correlation between the age of animals and the osteogenic potential of free periosteal autograft. The tibial periosteum of 27 rabbits, ranging in age from 4-104 weeks, was stripped and implanted into the quadriceps. Radiographic and histologic examination demonstrated that new bone was formed in both the young and adult rabbits. The morphologic basis and mechanism of bone formation of periosteum are discussed. Maintenance of integrity of the cambium layer of the periosteal graft is emphasized. Free periosteal graft of adult rabbits in the "resting" state can retain its osteogenic potential and produce new bone.

Aging↗

Periosteal resorption and periosteal neostosis: comparison of normal subjects and renal failure patients on chronic ambulatory peritoneal dialysis using MOP-3 image analysis system and a grading method.

This is the first known attempt to quantitate periosteal resorption (PR) and perisoteal neostosis (PN) by a semi-automatic image analysis system (Zeiss MOP-3). The normal ranges and errors for PR were found to be similar to those of a previous study using a measuring magnifier. The findings in chronic renal failure patients showed that MOP-3 measurements were actually diagnostically slightly less sensitive than the results by a simple grading method. Comparison with plasma-immunoreactive parathyroid hormone (iPTH) concentrations showed that while the latter had a higher sensitivity for detection of hyperparathyroidism, the radiologic parameters nevertheless showed abnormal PR in 12% of the observations where iPTH was normal. Both PR and PN correlated significantly with iPTH (r = 0.55 and 0.30 respectively, P less than 0.01).

Adult↗

Periosteal transection and periosteal stripping for correction of angular limb deformities in foals.

Valgus deformities were created in 6 pony foals by hemicircumferential transection of the periosteum and periosteal stripping (HCTP and PS) just proximally to the distal physis on the medial side of 1 radius (principal thoracic limb). The opposite thoracic limb served as a control. One month after this surgical procedure was done, the limbs were radiographed and the angle of deviation was determined. All horses developed a valgus deformity of the principal limb. In an effort to correct the acquired valgus deformity, the 2nd surgical procedure was performed--HCTP and PS on the lateral aspect of the principal radius. The carpal valgus deformities corrected within 3 months. To determine the differences in growth, stainless steel wires were introduced into both legs of each foal at certain points on the distal part of the radius. Growth changes in response to the HCTP and PS were not significantly different in the 2 groups of thoracic limbs. Increased bone growth did occur at the medial aspect of the bone in response to the 1st surgical procedure and an increase was found on the lateral aspect of the bone in response to the 2nd. The reasons for the statistically insignificant changes are discussed. A significant increase in bone width at the level of growth plate developed in response to the 1st and 2nd HCTP and PS procedures.

Animals↗

[Periostitis or, rather, periosteal appositions in paediatrics (author's transl)].

In relation to a case of multiple fatigue fractures definitely diagnosed by scintigraphy and xerography, the authors report two other previous cases of spontaneous fractures at a single site in which the diagnosis was made only after surgical biopsy and histological examination. Recalling the frequent confusion arising in children between periosteal appositions and osteomyelitis or Ewing's sarcoma, and the different radiological phases of this type of fracture, they stress the necessity for a maximum effort to demonstrate the key element in the diagnosis: the cortical fissure. The latter is often minimal, at the limit of visibility and developing late. Thus repeated examinations and the use of special radiological techniques are necessary.

Bone Diseases↗

Mice lacking thrombospondin 2 show an atypical pattern of endocortical and periosteal bone formation in response to mechanical loading.

Thrombospondin 2 (TSP2) is an extracellular matrix (ECM) protein localized to bone. Since mice with a targeted disruption of the TSP2 gene (TSP2-null) have increased bone formation, we hypothesized that mice lacking TSP2 would show an enhanced osteogenic response to mechanical loading. We addressed our hypothesis by subjecting wild-type (WT) and TSP2-null mice to mechanical loading using the non-invasive murine tibia loading device, and statistical comparisons were made between loaded and unloaded bones within genotype, between genotypes, and between the periosteal and endocortical surfaces within genotype. Right tibiae of WT and TSP2-null mice received 5 days of a low-magnitude loading protocol. This low-magnitude loading (inducing approximately 900 and 500 muepsilon at periosteal and endocortical surfaces of WT bones, respectively) affected neither periosteal nor endocortical bone formation rate (BFR/BS) when comparing loaded to intact bones in either WT or TSP2-null mice, nor did it result in any significant differences between WT and TSP2-null. As well, there was no difference between loaded endocortical and periosteal surfaces in WT mice; however, endocortical BFR/BS in TSP2-null loaded tibia was significantly elevated relative to the periosteal BFR/BS-despite peak periosteal strains being significantly greater than endocortical strains in TSP2-null mice (690 versus 460 muepsilon). To confirm this counterintuitive surface-specific response in TSP2-null mice and to induce significant periosteal bone formation, osteogenic potency of the loading protocol was amplified by doubling the number of loading bouts (10 loading days) and loading magnitude (1 Hz, resulting in 1400 and 900 muepsilon peak strain at the periosteal and endocortical surfaces, respectively). Under load, both WT and TSP2-null mice showed significantly increased periosteal mineralizing surface (by nearly three-fold and five-fold, respectively), but mineral apposition rate (MAR) was not statistically changed. The increased MS/BS resulted in a five-fold increase in WT periosteal BFR/BS, but the TSP2-null periosteal BFR/BS was unchanged. Furthermore, this increase in WT loaded periosteal BFR/BS was statistically greater than the WT endocortical BFR/BS. At the endocortical surface of WT mice, loading did not significantly increase bone formation parameters (versus intact). In contrast, at the endocortical surface of TSP2-null mice, loading induced a significant two-fold increase in BFR/BS (versus intact), that was also significantly greater than the endocortical BFR/BS of loaded WT mice. Thus, exogenous loading of TSP2-null mice resulted in highly variable responses that did not reflect the induced strains at the periosteal and endocortical surfaces. While in WT mice, loading resulted in increased periosteal BFR/BS that was greater than the endocortical BFR/BS, in TSP2-null mice loading resulted in endocortical (not periosteal) BFR/BS that was elevated. This reversal in envelope-specific bone formation in TSP2-null mice occurred despite periosteal strains being significantly greater than endocortical (1290 versus 775 muepsilon) and strain distributions being similar to that of WT. These results show that the disruption of a single gene can lead to a reversal in normal pattern of load induced bone formation, and more specifically, that the functional interaction of TSP2 with mechanical loading is highly contextual and specific to the cortical bone envelope examined.

Animals↗

[Heterotopic and orthotopic bone formation with a vascularized periosteal flap, a matrix and rh-BMP-2 (bone morphogenetic protein) in the rat model].

The purpose of this study was to construct a vascularized bone graft using the osteoinductive bone morphogenetic protein (rh-BMP-2), a polylactic acid matrix (OPLA/HY), and a vascularized periosteal flap containing osteoprogenitor cells ectopically in the groin or orthotopically in a femoral defect. In the Lewis rat, periosteal flaps were harvested from the medial surface of the tibia vascularized by the saphenous artery and vein and were transferred to the groin on its vascularized pedicle. Alternatively, the periosteal flap along its pedicle was transferred between the thigh muscles to be wrapped around a femoral defect of 1 cm. The animals were divided into 10 groups (82 animals). In group 1, the periosteal flap was left empty in the groin. Groups 2 and 3 consisted of the periosteal flap and 20 micrograms rh-BMP-2, but in group 3 the vascular pedicle was ligated proximally. In group 4 the flap was harvested without the periosteal layer and turned "inside out". Groups 5 and 6 consisted of the periosteal flap and the matrix OPLA/HY +/- 20 micrograms rh-BMP-2. In the femoral defect model, bone formation was studied using the matrix OPLA/HY alone (group 7) or combined with the vascularized periosteal flap (group 8), or in combination with OPLA/HY + BMP (group 9) or OPLA/HY + BMP + the periosteal flap (group 10). The presence and density of new bone formation in the groin and femoral defect were evaluated radiologically and histologically at 4 and 8 weeks. Good bone formation in the groin chamber (ectopic) was demonstrated in the periosteal flap + OPLA/HY + BMP group. In the femoral defects, good bone formation (orthotopic) was seen in the OPLA/HY + BMP + the periosteal flap groups. However, with the presence of a vascularized periosteal flap, more bone formation along the rim of the defect was observed. This study of ectopic bone formation in the groin and orthotopic bone formation in the femoral defect demonstrates that optimal bone formation requires four factors: BMP, a biodegradable matrix, osteoprogenitor cells, and blood supply. Potentially in the future, this technique could be used to reconstruct a bony defect or a nonunion by covering the involved area with a vascularized periosteal flap and a suitable matrix combined with BMP. Alternatively, a vascularized bone graft could be prefabricated at a distant site and then transferred microsurgically into a defect.

Animals↗

Magnetic resonance imaging detection of early experimental periostitis. Comparison of magnetic resonance imaging, computed tomography, and plain radiography with histopathologic correlation.

This study characterizes the appearance of periosteal reaction by magnetic resonance imaging (MRI), and evaluates the efficacy of MRI versus computed tomography (CT), and plain film radiography (PF) in detecting early, experimentally induced periostitis. Acute Staphylococcus aureus osteomyelitis was induced in 30 legs of 20 New Zealand white rabbits. The rabbits were then imaged with MR, contrast-unenhanced CT, and PF 4 days after infection. Histologically, periosteal elevation was present in 27 cases. Periosteal ossification was seen in 23 cases, and cellular reaction without ossification in 4 cases. Periosteal reaction was demonstrated by PF in 21 (78%) and by CT in 20 (74%) cases. Evidence of periostitis was seen by MR in all 27% (100%) cases. MR resulted in two false-positive diagnoses. Multiple concentric, alternating high and low signal arcs demonstrated by MR in 19 (70%) cases represented periosteal ossification surrounded by fibrous or granulation tissue. These findings demonstrate the ability of MR to detect periostitis despite the absence of periosteal ossification. MR was more sensitive than CT (P less than .05) or PF (P less than .05) in the detection of experimentally induced periostitis.

Acute Disease↗