Klinik und Poliklinik für Unfall-, Hand-, Plastische und Wiederherstellungschirurgie (Chirurgische Klinik II)
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- Klinik und Poliklinik für Unfall-, Hand-, Plastische und Wiederherstellungschirurgie (Chirurgische Klinik II) (163)
- Lehrstuhl für Orthopädie (15)
- Institut für diagnostische und interventionelle Radiologie (Institut für Röntgendiagnostik) (14)
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- Klinik und Poliklinik für Allgemein-, Viszeral-, Gefäß- und Kinderchirurgie (Chirurgische Klinik I) (5)
- Neurochirurgische Klinik und Poliklinik (5)
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- Klinik und Poliklinik für Anästhesiologie (ab 2004) (4)
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- 309962 (2)
The use of bone-cement-enforced osteosynthesis is a growing topic in trauma surgery. In this context, drillability is a desirable feature for cements that can improve fracture stability, which most of the available cement systems lack. Therefore, in this study, we evaluated a resorbable and drillable magnesium-phosphate (MgP)-based cement paste considering degradation behavior and biocompatibility in vivo. Two different magnesium-phosphate-based cement (MPC) pastes with different amounts of phytic acid (IP 6) as setting retarder (MPC 22.5 and MPC 25) were implanted in an orthotopic defect model of the lateral femoral condyle of New Zealand white rabbits for 6 weeks. After explantation, their resorption behavior and material characteristics were evaluated by means of X-ray diffraction (XRD), porosimetry measurement, histological staining, peripheral quantitative computed tomography (pQCT), cone-beam computed tomography (CBCT) and biomechanical load-to-failure tests. Both cement pastes displayed comparable results in mechanical strength and resorption kinetics. Bone-contact biocompatibility was excellent without any signs of inflammation. Initial resorption and bone remodeling could be observed. MPC pastes with IP 6 as setting retardant have the potential to be a valuable alternative in distinct fracture patterns. Drillability, promising resorption potential and high mechanical strength confirm their suitability for use in clinical routine.
The tumor microenvironment (TME) in breast cancer is determined by the complex crosstalk of cancer cells with adipose tissue-inherent cells such as adipose-derived stromal cells (ASCs) and adipocytes resulting from the local invasion of tumor cells in the mammary fat pad. This leads to heterotypic cellular contacts between these cell types. To adequately mimic the specific cell-to-cell interaction in an in vivo-like 3D environment, we developed a direct co-culture spheroid model using ASCs or differentiated adipocytes in combination with MDA-MB-231 or MCF-7 breast carcinoma cells. Co-spheroids were generated in a well-defined and reproducible manner in a high-throughput process. We compared the expression of the tumor-promoting chemokine CCL5 and its cognate receptors in these co-spheroids to indirect and direct standard 2D co-cultures. A marked up-regulation of CCL5 and in particular the receptor CCR1 with strict dependence on cell–cell contacts and culture dimensionality was evident. Furthermore, the impact of direct contacts between ASCs and tumor cells and the involvement of CCR1 in promoting tumor cell migration were demonstrated. Overall, these results show the importance of direct 3D co-culture models to better represent the complex tumor–stroma interaction in a tissue-like context. The unveiling of tumor-specific markers that are up-regulated upon direct cell–cell contact with neighboring stromal cells, as demonstrated in the 3D co-culture spheroids, may represent a promising strategy to find new targets for the diagnosis and treatment of invasive breast cancer.
Purpose
Hypertrophic cartilage is an important characteristic of osteoarthritis and can often be found in patients suffering from osteoarthritis. Although the exact pathomechanism remains poorly understood, hypertrophic de-differentiation of chondrocytes also poses a major challenge in the cell-based repair of hyaline cartilage using mesenchymal stromal cells (MSCs). While different members of the transforming growth factor beta (TGF-β) family have been shown to promote chondrogenesis in MSCs, the transition into a hypertrophic phenotype remains a problem. To further examine this topic we compared the effects of the transcription growth and differentiation factor 5 (GDF-5) and the mutant R57A on in vitro chondrogenesis in MSCs.
Methods
Bone marrow-derived MSCs (BMSCs) were placed in pellet culture and in-cubated in chondrogenic differentiation medium containing R57A, GDF-5 and TGF-ß1 for 21 days. Chondrogenesis was examined histologically, immunohistochemically, through biochemical assays and by RT-qPCR regarding the expression of chondrogenic marker genes.
Results
Treatment of BMSCs with R57A led to a dose dependent induction of chondrogenesis in BMSCs. Biochemical assays also showed an elevated glycosaminoglycan (GAG) content and expression of chondrogenic marker genes in corresponding pellets. While treatment with R57A led to superior chondrogenic differentiation compared to treatment with the GDF-5 wild type and similar levels compared to incubation with TGF-ß1, levels of chondrogenic hypertrophy were lower after induction with R57A and the GDF-5 wild type.
Conclusions
R57A is a stronger inducer of chondrogenesis in BMSCs than the GDF-5 wild type while leading to lower levels of chondrogenic hypertrophy in comparison with TGF-ß1.
Für den Funktionserhalt nach einer Fragilitätsfraktur ist eine stabile Osteosynthese, welche eine frühfunktionelle Nachbehandlung zur Vermeidung längerer Immobilität erlaubt, mit suffizienter Reposition essenziell. Die stabile Osteosynthese kann in osteoporotischem Knochen jedoch durch dessen schwache biomechanische Eigenschaften limitiert sein. Indem die in-situ-Implantataugmentation mit Knochenzement die Belastbarkeit des Knochens in Implantatnähe verbessert, kann auch in osteoporotischem Knochen eine stabile Osteosynthese erreicht werden.
Ziel dieser Studie war es, eine vielversprechende Formulierung eines Magnesiumphosphatzementes so weiterzuentwickeln, dass deren Anwendung bei der in-situ-Implantataugmentation möglich wurde. In einem zweiten Schritt sollte die Formulierung gegenüber kommerziell erhältlichen Knochenzementen durch die Materialprüfung im Druckversuch und mithilfe eines biomechanischen Testmodells evaluiert werden.
Die Vorversuche offenbarten die Nachteile der konventionellen, wasserbasierten Magnesiumphosphatzementformulierung bei der in-situ-Implantataugmentation: „Filter Pressing“ und eine unpassende Viskosität limitierten die Anwendung. Erst die Formulierung als vorgemischte Magnesiumphosphat-Paste mit Propan-1,2,3,-triol als Bindemittel verbesserte die Injizierbarkeit und ermöglichte eine verlässliche in-situ- Implantataugmentation.
Bei der Zementevaluation zeigte Traumacem™ V+ als PMMA-Zement die höchste Kompressionsfestigkeit im Druckversuch, die höchste Rotationsstabilität in der Torsionsprüfung und eine sehr gute Injizierbarkeit. Paste-CPC und MgPO-Paste zeigten sich in Druckversuch und Torsionsprüfung untereinander vergleichbar, wobei die MgPO-Paste tendenziell eine initial höhere Stabilität aufweist. Für den Parameter Normalisiertes Drehmoment zeigten alle Zementgruppen einen statistisch signifikanten Unterschied zur Kontrollgruppe, was den stabilitätssteigernden Effekt aller verwendeten Knochenzemente demonstriert. Es konnte kein Effekt der in-situ-Implantataugmentation auf Phimax, also auf den, bis zum maximalen Drehmoment gefahrenen Winkel, gefunden werden. Die Korrelation zwischen Drehmoment und Knochendichte zeigte den Zusammenhang zwischen Rotationsstabilität und Knochendichte für die Kontrollgruppe, welcher jedoch bei Zementaugmentation mit Traumacem™ V+ und MgPO-Paste verschwand.
Zusammengefasst wurde in dieser Studie erstmals eine biologisch vorteilhafte MgPO- Paste für den Einsatz bei der in-situ-Implantataugmentation entwickelt und verwendet. Weiter konnte der stabilitätssteigernde Effekt der Zementaugmentation mit dieser MgPO-Paste, sowie mit den Knochenzementen Traumacem™ V+ und Paste-CPC, für TFNA-Schenkelhalsklingen im isolierten Femurkopf-Modell gezeigt werden. Der Einsatz der MgPO-Paste bei der in-situ-Implantataugmentation bedarf bis zur eventuellen Marktreife einer Verbesserung der Injizierbarkeit sowie der Evaluation in klinischen Studien.
Present surgical situations require a bone adhesive which has not yet been developed for use in clinical applications. Recently, phosphoserine modified cements (PMC) based on mixtures of o-phosphoserine (OPLS) and calcium phosphates, such as tetracalcium phosphate (TTCP) or α-tricalcium phosphate (α-TCP) as well as chelate setting magnesium phosphate cements have gained increasing popularity for their use as mineral bone adhesives. Here, we investigated new mineral-organic bone cements based on phosphoserine and magnesium phosphates or oxides, which possess excellent adhesive properties. These were analyzed by X-ray diffraction, Fourier infrared spectroscopy and electron microscopy and subjected to mechanical tests to determine the bond strength to bone after ageing at physiological conditions. The novel biomineral adhesives demonstrate excellent bond strength to bone with approximately 6.6–7.3 MPa under shear load. The adhesives are also promising due to their cohesive failure pattern and ductile character. In this context, the new adhesive cements are superior to currently prevailing bone adhesives. Future efforts on bone adhesives made from phosphoserine and Mg2+ appear to be very worthwhile.
Background
To cover soft tissue defects, the perforator-based propeller flap offers the option to rotate healthy tissue into complex wounds. By rotating the flap, the perforator is torqued. As a result, perfusion changes are possible.
Methods
A retrospective data analysis of patients was done, who received a propeller flap to cover soft tissue defects of the lower extremity as well as a peri- and postoperative perfusion monitoring with a laser-Doppler-spectrophotometry system. Additionally, patient-specific data were collected.
Results
Seven patients were identified. Four patients experienced early complications, two epidermolysis of the distal flap areas, three wound healing disorders, and one partial flap necrosis. Intraoperative perfusion monitoring showed a decline of blood flow after incision of the flap, especially at distal flap site. In case of complications, there were prolonged blood flow declines up to the first postoperative day.
Conclusion
Torqueing the perforator by rotating the flap can cause an impairment in inflow and outflow. If the impairment is prolonged, perfusion-associated complications are possible. The identification of a viable perforator is particularly important. In addition, a conservative postoperative mobilization is necessary to compensate for the impaired and adapting outflow.
In this study, the impact of reconstruction sharpness on the visualization of the appendicular skeleton in ultrahigh-resolution (UHR) photon-counting detector (PCD) CT was investigated. Sixteen cadaveric extremities (eight fractured) were examined with a standardized 120 kVp scan protocol (CTDI\(_{vol}\) 10 mGy). Images were reconstructed with the sharpest non-UHR kernel (Br76) and all available UHR kernels (Br80 to Br96). Seven radiologists evaluated image quality and fracture assessability. Interrater agreement was assessed with the intraclass correlation coefficient. For quantitative comparisons, signal-to-noise-ratios (SNRs) were calculated. Subjective image quality was best for Br84 (median 1, interquartile range 1–3; p ≤ 0.003). Regarding fracture assessability, no significant difference was ascertained between Br76, Br80 and Br84 (p > 0.999), with inferior ratings for all sharper kernels (p < 0.001). Interrater agreement for image quality (0.795, 0.732–0.848; p < 0.001) and fracture assessability (0.880; 0.842–0.911; p < 0.001) was good. SNR was highest for Br76 (3.4, 3.0–3.9) with no significant difference to Br80 and Br84 (p > 0.999). Br76 and Br80 produced higher SNRs than all kernels sharper than Br84 (p ≤ 0.026). In conclusion, PCD-CT reconstructions with a moderate UHR kernel offer superior image quality for visualizing the appendicular skeleton. Fracture assessability benefits from sharp non-UHR and moderate UHR kernels, while ultra-sharp reconstructions incur augmented image noise.
Traumatic brain injury (TBI) is the leading cause of death and disability in polytrauma and is often accompanied by concomitant injuries. We conducted a retrospective matched-pair analysis of data from a 10-year period from the multicenter database TraumaRegister DGU\(^®\) to analyze the impact of a concomitant femoral fracture on the outcome of TBI patients. A total of 4508 patients with moderate to critical TBI were included and matched by severity of TBI, American Society of Anesthesiologists (ASA) risk classification, initial Glasgow Coma Scale (GCS), age, and sex. Patients who suffered combined TBI and femoral fracture showed increased mortality and worse outcome at the time of discharge, a higher chance of multi-organ failure, and a rate of neurosurgical intervention. Especially those with moderate TBI showed enhanced in-hospital mortality when presenting with a concomitant femoral fracture (p = 0.037). The choice of fracture treatment (damage control orthopedics vs. early total care) did not impact mortality. In summary, patients with combined TBI and femoral fracture have higher mortality, more in-hospital complications, an increased need for neurosurgical intervention, and inferior outcome compared to patients with TBI solely. More investigations are needed to decipher the pathophysiological consequences of a long-bone fracture on the outcome after TBI.
Avulsionsfrakturen des Kalkaneus sind seltene Verletzungen und machen mit 0,03 % bis 0,1 % einen sehr kleinen Anteil aller Frakturen aus. (13, 20-23, 25) Allerdings sind sie mit einer hohen Rate an Komplikationen verbunden. (27, 30, 73) Neben der prekären Weichteilsituation (17, 24, 30, 43, 44, 49) stellt vor allem eine ausreichende Stabilität der osteosynthetischen Versorgung eine Herausforderung dar. (30, 73) In dieser biomechanischen Studie wurden drei verschiedene kanülierte Schraubentypen, sowie zwei winkelstabile Plattenosteosynthesen zur Versorgung von Kalkaneusfrakturen bezüglich ihrer biomechanischen Stabilität in einer Materialprüfmaschine unter optischem Tracking mithilfe einer 3D-Kamera getestet und verglichen. Dazu wurden für jede der fünf Gruppen Avulsionsfrakturen vom Typ II nach Beavis an je zehn Kalkaneusmodellen aus Kunststoff erzeugt und diese anschließend unter Verwendung der jeweiligen Osteosynthese versorgt. Unter den drei Schraubentypen gab es zwei kanülierte Schrauben unterschiedlicher Größe mit Unterlegscheiben, die auch in der klinischen Praxis bereits Verwendung finden. Außerdem wurden versenkbare, kanülierte Doppelgewinde Schrauben verwendet, deren Einsatz bei dieser Verletzung nach unserem Wissen bisher nicht in der Literatur beschrieben ist. Das winkelstabile Plattensystem wurde bis jetzt nach eigener Literaturrecherche ebenfalls nicht in der hier angewandten Art und Weise zur Versorgung derartiger Frakturen verwendet. Alle Versuchsmodelle wurden, sofern es nicht während der Testung zum Versagen kam, auf drei verschiedenen Kraftniveaus (100 N, 200 N, 300 N) zyklisch und anschließend mit einer Maximalkrafttestung getestet. Dabei wurden das Peak to Peak Displacement bei 100 N, 200 N und 300 N, das maximale Displacement, die plastische Deformation bei 100 N, 200 N und 300 N, die Maximalkraft, die Steifigkeit bei 100 N, 200 N und 300 N und die Art des Fixationsversagens erfasst. Ziel der Studie war es, Unterschiede zwischen den Versorgungsformen aufzudecken. Die Ergebnisse zeigen, dass die winkelstabile Plattenosteosynthese Stabilitätsdefizite bei der Versorgung von „beak“ Frakturen aufweist. Außerdem konnte gezeigt werden, dass beim Vergleich der versenkbaren, kanülierten Doppelgewinde Schrauben mit 5,0 mm Durchmesser mit den kanülierten Schrauben mit 6,5 mm Durchmesser und Unterlegscheiben keine statistisch signifikanten Unterschiede bestehen, außer bezüglich der Steifigkeit bei 300 N. Somit ist eine vergleichbare biomechanische Stabilität wahrscheinlich. Die versenkbaren, kanülierten Doppelgewinde Schrauben besitzen eine hohe biomechanische Stabilität und bieten die Möglichkeit, den Schraubenkopf im Knochenniveau zu versenken, wodurch weniger Weichteilirritationen und Wundheilungsstörungen zu vermuten sind. Sie scheinen deshalb eine attraktive Alternative zu kanülierten Schrauben mit Unterlegscheiben zu sein. Ob versenkbare, kanülierte Doppelgewinde Schrauben z.B. auch im Kadaverversuch eine ausreichende biomechanische Stabilität zeigen, bleibt allerdings nachfolgenden biomechanischen Studien vorbehalten. Ebenso muss der mögliche postoperative Vorteil hinsichtlich der Schonung der Weichteile in klinischen Studien untersucht werden.
Background
Dislocations of the elbow are the second most common dislocations of humeral joints following the shoulder. Besides numerous possible concomitant injuries of the collateral ligaments or the extensor or flexor apparatus, an accompanying disruption of the brachial artery is a rare occurrence. In the following, such a case is presented and discussed.
Method
A 70-year-old woman sustained a closed posterior elbow dislocation with accompanying disruption of the brachial artery due to a fall in a domestic environment. Pulselessness of the radial artery led to a computed tomography angiography being performed, which confirmed the diagnosis. Direct operative vascular reconstruction with a vein insert was carried out. Due to strong swelling of the soft tissue, other examinations of the elbow could not be performed initially. A redislocation a few days later led to an operative stabilization of the elbow joint.
Results
The final consultation 4 months postoperatively showed a stable, centered elbow joint and a normal perfusion of the affected arm. The elbow function was good with a range of motion of 0/0/110° of extension/flexion.
Conclusion
An elbow dislocation is a complex injury. An accurate clinical examination of possible concomitant injuries is important and should be repeated in the first few days after the occurrence. Vascular reconstruction should be performed immediately. In the case of persistent joint instability, an operative stabilization is indicated and may be supported by a hinged external fixator.