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H Stützle

Publications and source records attributed to H Stützle.

7 recordsLinked to original sources

[New-bone formation by osteogenic protein-1 and autogenic bone marrow in a critical tibial defect model in sheep].

AIM: Osteogenic Protein-1 (OP-1) is known to be a very potent osteoinductive growth factor. However, experimental studies using critical-size defect models in the weight-bearing lower extremity show non-uniform results. Therefore, we studied the osteoinductivity of OP-1 in a tibial worst-case defect model in sheep. Potential improvement of OP-1 induced new bone formation using a composite graft with autogenous bone marrow was to be investigated. METHOD: In 19 sheep a 5 cm segmental defect of the tibial diaphysis was treated by intramedullary nailing and filled with the following implants: 5 mg OP-1 + inactivated demineralized bone matrix (group 1; n = 6); 5 mg OP-1 + inactivated demineralized bone matrix + 5 ml autogenous bone marrow (group 2; n = 5); autogenous cancellous bone (group 3; n = 4), or inactivated demineralized bone matrix + 5 ml autogenous bone marrow (group 4; n = 4). RESULTS: In total, 3 out of 10 defect sites treated with OP-1 were completely bridged radiographically by 12 weeks. Initially, x-rays showed accelerated new bone formation by use of the composite grafts containing OP-1 and autogenous bone marrow. However, 12 weeks post surgery 3D-CT-volumetry could not detect significant differences of new bone formation within the defect sites treated by OP-1 with or without bone marrow, while new bone formation by autogenous cancellous bone was better than by OP-1. CONCLUSION: In our worst case defect model, the osteoinductive potential of OP-1 is initially accelerated but 12 weeks post surgery not increased when combined with autogenous bone marrow transplantation. So far, critical segmental bone defects of the weight-bearing lower extremity can not be bridged regularly in our model by use of OP-1. Therefore, for the treatment of such critical defects with rotational instability the examined application device of OP-1 can not yet be recommended.

Animals↗

Tensor fasciae latae perforator flap for reconstruction of composite Achilles tendon defects with skin and vascularized fascia.

The surgical management of large defects of the Achilles tendon and overlying skin is very demanding and necessitates, as a rule, a free vascularized graft. The ideal characteristics of a thin layer of skin and a strong tendon component, combined with a reliable blood supply and minimal morbidity at the donor site, have only been partially met by all previous grafts used in this situation. The authors performed reconstructions in five patients with large defects of the Achilles tendon and overlying skin by using a perforator flap derived from the tensor fasciae latae flap. A vascularized skin-subcutis-fascia lata flap could be raised by dissecting out two to three perforating arteries through the tensor fasciae latae muscle to the ascending branch of the lateral circumflex femoral artery; the muscle was left in situ in the process. All the flaps took well without complications. At final examination after an average of 20 months, the reconstructed Achilles tendon showed good functional results, although there was a 50 to 70 percent reduction in power during plantar flexion when compared with the normal side. A very good aesthetic result could be obtained after a debulking operation was performed on the skin flap.

Achilles Tendon↗

[Bone regeneration stimulated by bone substitute materials].

Prompted by severe problems in autogeneic and allogeneic bone transplantation, intensive efforts were made to find sufficient substitutes. A main demand on these materials, especially in healing of osseous defects, is to achieve results comparable to those of auto- or allografts. These must be related to their biomechanical and particularly to their biological properties, i.e. the ability to form new bone, osseous integration and physiological remodeling. Within different trials in the tibiae of sheep we investigated bone substitutes like hydroxyapatite ceramics (HA) or partially demineralized bone matrix (pDBM) and compared them to the gold standards of autogeneic and allogeneic bone transplantation. Therefore we used two different models: the drill hole model with small size defects of 6 mm in diameter and the shaft defect model as a true-to-life defect with a 5 cm large diaphyseal defect. Evaluation was done by X-rays, histology, microradiography, fluorescent microscopy and morphometry of the small size defects. HA showed only small effects on new bone formation and works merely as an osteoconductor. However, excellent new bone formation was regularly achieved by pDBM in the small defects, whereas it was limited in the large size defects. But considering their mechanism of action, it is possible to bridge large bone defects by pDBM.

Bone Demineralization, Pathologic↗

Sterilization of partially demineralized bone matrix: the effects of different sterilization techniques on osteogenetic properties.

Transplantation of allogenic bone requires the thorough examination of donors as well as the careful processing and storage of samples in order to minimize potential infection. Other problems associated with allogenic transplants such as low osteoinductive properties and immunological reactions led to the development of partially demineralized bone matrix (PDBM). This highly osteogenic bone extract is largely free of antigens and easy to produce. However, in order to exclude the potential risk of infection, PDBM should be sterilized prior to implantation. It was the purpose of this study to investigate the influence of various sterilization techniques on the osteoinductive properties of PDBM. Seventy-six drill defects with a diameter of 0.6 cm in the tibia of 11 Merino sheep were filled with PDBM as well as autogenic or allogenic cancellous bone. Prior to implantation the PDBM was sterilized using autoclavation, gamma irradiation, ethylene oxide, or ethanol. Twelve empty drill holes served as controls. The extent of new bone formation was ascertained by histological, fluorescent-optical, and microradiographical examinations 3 and 6 weeks postoperatively. Furthermore, the amount of newly formed bone was measured quantitatively. Apart from autoclaved PDBM, all matrix grafts showed excellent new bone formation after sterilization, exceeding the results of allogenic cancellous bone.

Animals↗

[Bridging long tibial shaft defects by partially demineralized bone matrix].

The problems arising from the transplantation of autogenic and allogenic bone have significantly limited the use of these methods. Hence, there is an ever increasing demand for suitable transplant materials that could be readily available to orthopaedic surgeons throughout the country. Although the advantages of demineralized bone matrix over allogenic cancellous bone have been shown in numerous experimental studies, its broad clinical application has so far been limited. The purpose of this study was to investigate the osteogenic properties of partially demineralized bone matrix in clinically relevant and realistic conditions. Tibial defects 5 cm in length in 24 merino sheep were bridged by way of medullary nailing and filled with various preparations of bone matrix. Cortical bone displaying poor vascularization and rotation instability of the osteosynthesis ensured extremely difficult testing conditions for the transplant. Postoperatively, the extent of new bone formation was evaluated by means of regular X-ray examinations over a period of 12-20 weeks. In addition, histological, fluorescent-optical and microradiographic examinations of the final specimen were carried out. Good new bone formation regularly followed the transplantation of partially demineralized bone matrix with a particle size of 750 microns. Complete bridging of the defect was achieved when small amounts of bone marrow were added. The use of bone matrix with a smaller or larger particle size did not influence the rate of new bone formation perceptibly.

Animals↗

[Organization of a bone bank].

The transmission of infectious diseases by allografts from bone banks has led to considerable restrictions on bone transplantations. HIV and hepatitis are considered to be the most dangerous diseases transmitted in this way. To prevent the transmission of any infections, extensive precautions have to be applied when allografts are taken and during their storage. Donors have been checked for infectious diseases at the time of collection and 3 months later. In addition, the donated grafts must be cultured for aerobic and anaerobic bacteria. This elaborate series of tests can only be mastered if the bone bank is tightly organised. The number of available grafts also be increased by sterilisation and the use of demineralised bone matrix.

Acquired Immunodeficiency Syndrome↗

Bone transplantation.

According to one principle of surgery, the transplantation of vital tissue is the best method of reconstructing a defect. Because of absent immunologic reactions, high osteogenic potency, and preserved stability, transplantation of autogenous bone shows the best results. Necrosis of transplanted bone, leading inevitably to absorption and remodeling of the graft, can be avoided if microsurgically vascularized autogenous bone segments are transferred. Disadvantages are the low availability and the necessity of additional operations. As an alternative, deep-frozen allogeneic bone is used. However, this kind of bone shows delayed incorporation based on cellular and humoral immune reactions, and it is also installed into the host bed after overcoming the immune barrier. The risk of microbiological contamination or transmission of unrecognized germs such as HIV is a cause of great expense in bone banking techniques. If one succeeds in reducing (a) the immunologic defense reaction and (b) the risk of infection by sterilization or disinfection without damaging the osteoinductive proteins of bone matrix, the rate of complications can be lowered. Demineralized bone matrix can be used if biomechanical stability is not required. Its ability to induce osteogenesis without a major immune reaction or the risk of transmitting diseases justifies its clinical application. Further intensive research in these areas is unavoidable.

Bone Transplantation↗