TY - JOUR A1 - Al-Hejailan, Reem A1 - Weigel, Tobias A1 - Schürlein, Sebastian A1 - Berger, Constantin A1 - Al-Mohanna, Futwan A1 - Hansmann, Jan T1 - Decellularization of full heart — optimizing the classical sodium-dodecyl-sulfate-based decellularization protocol JF - Bioengineering N2 - Compared to cell therapy, where cells are injected into a defect region, the treatment of heart infarction with cells seeded in a vascularized scaffold bears advantages, such as an immediate nutrient supply or a controllable and persistent localization of cells. For this purpose, decellularized native tissues are a preferable choice as they provide an in vivo-like microenvironment. However, the quality of such scaffolds strongly depends on the decellularization process. Therefore, two protocols based on sodium dodecyl sulfate or sodium deoxycholate were tailored and optimized for the decellularization of a porcine heart. The obtained scaffolds were tested for their applicability to generate vascularized cardiac patches. Decellularization with sodium dodecyl sulfate was found to be more suitable and resulted in scaffolds with a low amount of DNA, a highly preserved extracellular matrix composition, and structure shown by GAG quantification and immunohistochemistry. After seeding human endothelial cells into the vasculature, a coagulation assay demonstrated the functionality of the endothelial cells to minimize the clotting of blood. Human-induced pluripotent-stem-cell-derived cardiomyocytes in co-culture with fibroblasts and mesenchymal stem cells transferred the scaffold into a vascularized cardiac patch spontaneously contracting with a frequency of 25.61 ± 5.99 beats/min for over 16 weeks. The customized decellularization protocol based on sodium dodecyl sulfate renders a step towards a preclinical evaluation of the scaffolds. KW - tissue engineering KW - decellularization KW - vascularized scaffold KW - cardiac patch KW - dynamic culture Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-270781 SN - 2306-5354 VL - 9 IS - 4 ER - TY - JOUR A1 - Weigel, Tobias A1 - Schmitz, Tobias A1 - Pfister, Tobias A1 - Gaetzner, Sabine A1 - Jannasch, Maren A1 - Al-Hijailan, Reem A1 - Schürlein, Sebastian A1 - Suliman, Salwa A1 - Mustafa, Kamal A1 - Hansmann, Jan T1 - A three-dimensional hybrid pacemaker electrode seamlessly integrates into engineered, functional human cardiac tissue in vitro JF - Scientific Reports N2 - Pacemaker systems are an essential tool for the treatment of cardiovascular diseases. However, the immune system’s natural response to a foreign body results in the encapsulation of a pacemaker electrode and an impaired energy efficiency by increasing the excitation threshold. The integration of the electrode into the tissue is affected by implant properties such as size, mechanical flexibility, shape, and dimensionality. Three-dimensional, tissue-like electrode scaffolds render an alternative to currently used planar metal electrodes. Based on a modified electrospinning process and a high temperature treatment, a conductive, porous fiber scaffold was fabricated. The electrical and immunological properties of this 3D electrode were compared to 2D TiN electrodes. An increased surface of the fiber electrode compared to the planar 2D electrode, showed an enhanced electrical performance. Moreover, the migration of cells into the 3D construct was observed and a lower inflammatory response was induced. After early and late in vivo host response evaluation subcutaneously, the 3D fiber scaffold showed no adverse foreign body response. By embedding the 3D fiber scaffold in human cardiomyocytes, a tissue-electrode hybrid was generated that facilitates a high regenerative capacity and a low risk of fibrosis. This hybrid was implanted onto a spontaneously beating, tissue-engineered human cardiac patch to investigate if a seamless electronic-tissue interface is generated. The fusion of this hybrid electrode with a cardiac patch resulted in a mechanical stable and electrical excitable unit. Thereby, the feasibility of a seamless tissue-electrode interface was proven. KW - biomedical materials KW - cardiac device therapy KW - hybrid pacemaker Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-177368 VL - 8 IS - 14545 ER - TY - THES A1 - Schürlein, Sebastian T1 - Entwicklung von Technologien zur Optimierung von Tissue Engineering Prozessen am Beispiel der Herstellung von kardialem Gewebe T1 - Development of technologies to optimize tissue engineering processes, documented on the example of the generation of cardiac tissue N2 - Kardiovaskuläre Erkrankungen, wie beispielsweise der Herzinfarkt, sind die häufigste Todesursache weltweit. Bei einem Herzinfarkt sterben Areale des Herzens aufgrund einer Unterversorgung mit Blut ab. Da das Herzmuskelgewebe ein sogenanntes terminal differenziertes Gewebe ist, kommt es zu keiner Regeneration des Gewebes, mit der Folge einer Herzinsuffizienz beziehungsweise dem Tod des Patienten. Eine alternative Behandlungsmöglichkeit zu einer Herztransplantation stellt das Tissue Engineering dar. Mit Hilfe des Tissue Engineerings können dreidimensionale Gewebe aufgebaut und kultiviert werden, um auf diese Weise ein funktionelles Gewebe zu erhalten, durch welches das abgestorbene Gewebeareal des Herzens zukünftig auch ersetzt werden könnte. In der vorliegenden Arbeit wurden notwendige Technologien für den Aufbau von Geweben entwickelt sowie erste Versuche für die Erzeugung eines funktionellen Herzmuskelgewebes durchgeführt. Beim Aufbau von dreidimensionalen Geweben finden Trägerstrukturen Anwendung, die mit Zellen besiedelt werden. Solche Trägerstrukturen können aus biologischen oder synthetischen Polymeren hergestellt sein oder aus der extrazellulären Matrix eines dezellularisierten Gewebes bestehen. Für eine standardisierte Dezellularisierung von Geweben wurde eine computergesteuerte Pumpeneinheit, für die Herstellung von Nanofaserscaffolds eine Elektrospinninganlage entwickelt. Mit Hilfe der Dezellularisierungseinheit können komplexe Organe, wie ein Herz im Ganzen, reproduzierbar dezellularisiert werden. Untersuchungen der mittels Elektrospinning hergestellten Nanofaserscaffolds, welche als Alternative zu der dezellularisierten, natürlichen Matrix eingesetzt werden können, zeigten bei allen hergestellten Zusammensetzungen eine Orientierung der Zellen entlang der Fasern. Die Kultivierung von Zellmatrixkonstrukten erfolgt im Tissue Engineering häufig unter dynamischen Bedingungen. Hierfür wurde ein mobiler Stand Alone Inkubator mit der erforderlichen Peripherie für eine Kultur unter Perfusion des Gewebes entwickelt. Als Weiterentwicklung des Stand Alone Inkubators ist eine modulare Bioreaktorplattform, bestehend aus Wärmetauscher, Beutelpumpe und Gasaustauscher, aufgebaut worden. In dieses System kann über Standard Anschlüsse jegliche Art von Bioreaktor in das System eingebunden werden. Durch die Kompaktheit des Systems ist es möglich mehrere Ansätze parallel auf engem Raum durchzuführen. Die Funktion der Plattform, wurde in der vorliegenden Arbeit durch die Gewebekultur einer nativen porzinen Karotis nachgewiesen. Für den Aufbau des kardialen Gewebes dient die small intestinal submucosa ohne Serosa (SISser) als Trägerstruktur. Der Aufbau des Gewebekonstrukts erfolgte in verschiedenen Ansätzen unter Einsatz verschiedener Zellarten. Native, aus Herzbiopsien generierte Cardiosphere derived cells (CDCs) verteilten sich gleichmäßige über die Oberfläche der Matrix, jedoch konnten immunhistologisch keine spezifischen kardialen Marker bei den artifiziellen Geweben nachgewiesen werden. Zellmatrixkonstrukte aus einer Mono Kultur von Kardiomyozyten, differenziert aus induzierten pluripotenten Stammzellen (iPS Zellen) sowie einer Co Kultur dieser Kardiomyozyten mit mesenchymalen Stammzellen und Zellen aus einer Herzbiopsie zeigten nach wenigen Tagen in Kultur ein kontraktiles Verhalten. Immunhistologische Färbungen der beiden Gewebe bestätigten die Expression der spezifischen kardialen Marker, wie beispielsweise kardiales Troponin T, kardiales Troponin C und alpha Actinin. Die Kardiomyozyten der Mono Kultur sind jedoch nicht über die gesamte Matrixoberfläche verteilt, sondern bilden Aggregate. Bei der Co Kultur kann eine gleichmäßige Verteilung der Zellen auf der Matrix beobachtet werden. Der vielversprechendste Ansatz für den Aufbau eines Herzmuskelgewebes, welches als Implantat oder Testsystem eingesetzt werden kann, bildet nach den in dieser Arbeit erzielten Ergebnissen, ein Konstrukt aus der SISser und der Co Kultur der Zellen. Allerdings muss die Zusammensetzung der Co Kultur sowie das Verhältnis der Zellzahlen optimiert werden. N2 - Cardiovascular diseases as myocardial infarction are the most frequent cause of death worldwide. During a myocardial infarction, areas of the heart are being damaged because of an insufficient nutrient supply. Heart tissue is a terminal differentiated tissue, this means that it can’t be regenerated by itself. The consequence of this characteristic is a heart insufficiency or the death of the patient. An alternative treatment to heart transplantation is promised by tissue engineering. By using the methods of tissue engineering, cells can be cultured on a scaffold to generate a mature tissue, which can be used to replace the damaged areas of the heart. In the present work systems for the generation of tissues have been developed and first experiments to build up a functional cardiac patch were performed. To generate three-dimensional tissues, scaffolds colonized with cells are necessary. These scaffolds can be produced with biological or synthetic polymers or even decellularized tissues can be used. A computer controlled decellularization platform was designed to ensure a standardized, reproducible decellularization of complex organs like hearts. Furthermore, an electrospinning device was developed for the production of nanofiber scaffolds. On such matrices, seeded cells grow along the fibers. Most cell-matrix-constructs are cultured under dynamic conditions in tissue engineering. A stand alone incubator system containing the required periphery to apply different culture conditions was developed. As further development a compact modular bioreactor platform consisting of a heat exchanger, a bag pump and a gas exchanger was established. All kinds of bioreactors can be enclosed to the system via standard Luer Lock Connectors. Due to the compactness of the system, it is possible to parallelize and run experiments easily on narrow space. The functionality of the platform was demonstrated by a tissue culture of a native porcine carotid artery. The small intestinal submucosa without serosa (SISser) was employed as matrix for the development of a functional cardiac patch. In different experiments diverse cell types were used to generate a cardiac construct. Cardiosphere derived cells (CDC) seeded on the SISser showed an equal distribution all over the surface of the matrix, but no expression of specific cardiac markers. Constructs consisting of a mono culture of induced pluripotent stem cell derived cardiomyocytes (CM iPS cells) or a co culture of CM iPS cells, mesenchymal stem cells and cells isolated form a heart biopsy showed a contraction of the whole matrix after a few days in culture. Furthermore, cardiac markers like cardiac troponin T, cardiac troponin C and alpha actinin could be observed by immunohistological staining. Regarding the morphology of the different tissues, the mono culture of the CM iPS cells formed agglomerates on the surface of the matrix whereas the co culture showed a well distribution of the cells all over the surface of the matrix. Consequently, the co culture on the SISser is the most promising approach for the development of a functional cardiac patch. However, the combination of cell types within the co culture and their ratio has to be optimized. KW - Tissue Engineering KW - Herzmuskel KW - Bioreaktorplattform KW - Elektrospinning KW - kardiales Tissue Engineering KW - kardiales Gewebe KW - bioreactor plattform KW - electrospinning KW - cardiac tissue engineering KW - Biomaterial KW - Gewebekultur Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-142432 ER - TY - JOUR A1 - Moll, Corinna A1 - Reboredo, Jenny A1 - Schwarz, Thomas A1 - Appelt, Antje A1 - Schürlein, Sebastian A1 - Walles, Heike A1 - Nietzer, Sarah T1 - Tissue Engineering of a Human 3D in vitro Tumor Test System JF - Journal of Visualized Experiments N2 - Cancer is one of the leading causes of death worldwide. Current therapeutic strategies are predominantly developed in 2D culture systems, which inadequately reflect physiological conditions in vivo. Biological 3D matrices provide cells an environment in which cells can self-organize, allowing the study of tissue organization and cell differentiation. Such scaffolds can be seeded with a mixture of different cell types to study direct 3D cell-cell-interactions. To mimic the 3D complexity of cancer tumors, our group has developed a 3D in vitro tumor test system. Our 3D tissue test system models the in vivo situation of malignant peripheral nerve sheath tumors (MPNSTs), which we established with our decellularized porcine jejunal segment derived biological vascularized scaffold (BioVaSc). In our model, we reseeded a modified BioVaSc matrix with primary fibroblasts, microvascular endothelial cells (mvECs) and the S462 tumor cell line For static culture, the vascular structure of the BioVaSc is removed and the remaining scaffold is cut open on one side (Small Intestinal Submucosa SIS-Muc). The resulting matrix is then fixed between two metal rings (cell crowns). Another option is to culture the cell-seeded SIS-Muc in a flow bioreactor system that exposes the cells to shear stress. Here, the bioreactor is connected to a peristaltic pump in a self-constructed incubator. A computer regulates the arterial oxygen and nutrient supply via parameters such as blood pressure, temperature, and flow rate. This setup allows for a dynamic culture with either pressure-regulated pulsatile or constant flow. In this study, we could successfully establish both a static and dynamic 3D culture system for MPNSTs. The ability to model cancer tumors in a more natural 3D environment will enable the discovery, testing, and validation of future pharmaceuticals in a human-like model. KW - bioengineering KW - biomedical engineering KW - tissue engineering KW - biotechnology KW - cultured KW - tumor cells KW - cell culture KW - 3D in vitro models KW - bioreactor KW - dynamic culture conditions KW - tumor test system KW - primary cell isolation KW - BioVaSc KW - decellularization KW - equipment and supplies KW - cellular microenvironment KW - culture techniques KW - cell engineering KW - anatomy KW - physiology KW - molecular biology KW - cellular biology Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132277 UR - http://www.jove.com/video/50460 VL - 78 IS - e50460 ER -