963 resultados para TISSUE ENGINEERED BONE


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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Pós-graduação em Genética - IBILCE

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Pós-graduação em Biologia Geral e Aplicada - IBB

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Bacterial cellulose (BC) has established to be a remarkably versatile biomaterial and can be used in wide variety of applied scientific endeavors, especially for medical devices. In fact, biomedical devices recently have gained a significant amount of attention because of increased interesting tissue-engineered products for both wound care and the regeneration of damaged or diseased organs. The architecture of BC materials can be engineered over length scales ranging from nano to macro by controlling the biofabrication process, besides, surface modifications bring a vital role in in vivo performance of biomaterials. In this work, bacterial cellulose fermentation was modified with carbon nanotubes for sensor applications and diseases diagnostic. SEM images showed that polymer modified-carbon nanotube (PVOH-carbon nanotube) produced well dispersed system and without agglomeration. Influences of carbon nanotube in bacterial cellulose were analyzed by FTIR. TGA showed higher thermal properties of developed bionanocomposites.

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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)

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Low-level laser therapy is a tool employed in the management of post-operative inflammation process and in the enhancement of reparative process. The aim of the study was to perform histological evaluation of dental and periodontal ligament of rats central upper-left incisor teeth re-implanted and irradiated with low-level laser (InGaAl, 685 nm, 50 J/cm(2)) 15, 30, and 60 days after re-implantation. Seventy-two male rats had the central upper left incisor removed and kept for 15 min on dry gauze before replantation. Laser was irradiated over the root surface and empty alveolus prior replantation and over surrounding mucosa after the re-implantation. After histological procedures, all slices were analyzed regarding external resorption area and histological aspects. We observed an increase of root resorption (p < 0.05) in the control group compared to the laser group at 15, 30, and 60 days. These results showed that the laser groups developed less root resorption areas than the control group in all experimental periods. Additionally, histological analysis revealed less inflammatory cells and necrotic areas in laser groups.

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The use of scaffolds for Tissue Engineering (TE) is increasing due to their efficacy in helping the body rebuild damaged or diseased tissue. Hydroxyapatite (HA) is the most suitable bioactive ceramic to be used in orthopaedic reconstruction since it replicates the mineral component of the hard tissues, and it has therefore excellent biocompatibility properties. The temporal and spatial control of the tissue regeneration process is the limit to be overcome in order to treat large bone and osteochondral defects. In this thesis we describe the realization of a magnetic scaffolds able to attract and take up growth factors or other bio-agents in vivo via a driving magnetic force. This concept involves the use of magnetic nanoparticles (MNP) functionalized with selected growth factors or stem cells. These functionalized MNP act as shuttles transporting the bio-agents towards and inside the scaffold under the effect of the magnetic field, enhancing the control of tissue regeneration processes. This scaffold can be imagined as a fixed “station” that provides a unique possibility to adjust the scaffold activity to the specific needs of the healing tissue. Synthetic bone graft substitutes, made of collagen or biomineralized collagen (i.e. biomimetic Hydroxyapatite/collagen composites) were used as starting materials for the fabrication of magnetic scaffolds. These materials are routinely used clinically to replace damaged or diseased cartilaginous or bone tissue. Our magnetization technique is based on a dip-coating process consisting in the infilling of biologically inspired porous scaffolds with aqueous biocompatible ferrofluids’ suspensions. In this technique, the specific interconnected porosity of the scaffolds allows the ferrofluids to be drawn inside the structure by capillarity. A subsequent freeze-drying process allows the solvent elimination while keeping very nearly the original shape and porosity of the scaffolds. The remaining magnetic nanoparticles, which are trapped in the structure, lead to the magnetization of the HA/Collagen scaffold. We demonstrate here the possibility to magnetize commercially available scaffolds up to magnetization values that are used in drug delivery processes. The preliminary biocompatibility test showed that the investigated scaffolds provide a suitable micro-environment for cells. The biocompatibility of scaffold facilitates the growth and proliferation of osteogenic cells.

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Over the past few years, in veterinary medicine there has been an increased interest in understanding the biology of mesenchymal stem cells (MSCs). This interest comes from their potential clinical use especially in wound repair, tissue engineering and application in therapeutics fields, including regenerative surgery. MSCs can be isolated directly from bone marrow aspirates, adipose tissue, umbilical cord and various foetal tissues. In this study, mesenchymal stem cells were isolated from equine bone marrow, adipose tissue, cord blood, Wharton’s Jelly and, for the first time, amniotic fluid. All these cell lines underwent in vitro differentiation in chondrocytes, osteocytes and adipocytes. After molecular characterization, cells resulted positive for mesenchymal markers such as CD90, CD105, CD44 and negative for CD45, CD14, CD34 and CD73. Adipose tissue and bone marrow mesenchymal stem cells were successfully applied in the treatment of tendinitis in race horses. Furthermore, for the first time in the horse, skin wounds of septicemic foal, were treated applying amniotic stem cells. Finally, results never reported have been obtained in the present study, isolating mesenchymal stem cells from domestic cat foetal fluid and membranes. All cell lines underwent in vitro differentiation and expressed mesenchymal molecular markers.

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Endodontic therapy consists in the management of several tissues such as pulp tissue, periodontal tissue, periapical bone and dentine. These tissues are often contaminated by blood, periapical exudates and biological fluids. An ideal orthograde or retrograde filling material should be non toxic, noncarcinogenic, nongenotoxic, biocompatible with the host tissues, insoluble in tissue fluids, and dimensionally stable. Calcium-silicate MTA based cements own many of these ideal characteristics, but the long setting time, the non-easy handling and the lack of mechanical properties at early times are few drawbacks which may complicate the clinical application. The aim of this study was to investigate the chemical, physical and biological properties of calcium-silicate MTA cements in order to improve the mechanical properties and the handling keeping the biological characteristics unchanged. Chemical and physical properties such as setting time, solubility, water-uptake, ion release, sealing ability were investigated according the ISO and ADA specifications. The bioactivity (ability to produce apatite nano-sferulities) of MTA cements were evaluated using ESEM/EDX, micro-Raman and ATR/FTIR spettroscopy.

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Im Rahmen dieser Arbeit wurde die Rolle von myelomonozytären Zellen, IFN-gamma (Interferon gamma), MyD88 (myeloid differentiation factor 88) und zugrundeliegenden Signalwege in der Angiotensin II (ATII)-induzierten vaskulären Inflammation, Dysfunktion und arteriellen Hypertonie untersucht. Wie bereits veröffentlichte Vordaten aus meiner Arbeitsgruppe zeigten, schützt die Depletion von Lysozym M (LysM)+ myelomonozytären Zellen (Diphteriatoxin-vermittelt in Mäusen, die transgen für den humanen Diphtheriatoxin-Rezeptor sind, LysMiDTR Mäuse) vor der ATII-induzierten vaskulären Dysfunktion und arterieller Hypertonie, und kann durch adoptiven Zelltransfer von Wildtyp Monozyten wiederhergestellt werden. In meiner Arbeit konnte ich zeigen, dass die Rekonstitution von Monozyten-depletierten LysMiDTR Mäusen mit Wildtyp Monozyten den Phänotyp der vaskulären Dysfunktion wiederherstellen kann, die Rekonstitution mit gp91phox-/y oder Agtr1-/- Monozyten jedoch nicht. Die Hypertonus-mediierenden Effekte dieser infiltrierenden Monozyten scheinen demnach von der intakten ATII und NADPH Oxidase Signalübertragung in diesen Zellen abhängig zu sein. Vermutlich ebenfalls für die Aktivierung der Monozyten funktionell wichtig sind IFN-gamma, produziert durch NK-Zellen, und der Transkriptionsfaktor T-bet (T-box expressed in T cells), exprimiert von NK-Zellen und Monozyten. IFN-gamma-/- Mäuse waren partiell geschützt vor der ATII-induzierten vaskulären Dysfunktion und charakterisiert durch reduzierte Level an Superoxid im Gefäß im Vergleich zu ATII-infundierten Wildtyp Mäusen. IFN-gamma-/- und T-bet defiziente Tbx21-/- Mäuse zeichneten sich ferner durch eine reduzierte ATII-mediierte Rekrutierung von NK1.1+ NK-Zellen, als ein Hautproduzent von IFN-gamma, sowie CD11b+GR-1low Interleukin-12 (IL-12) kompetenten Monozyten aus. Durch Depletions- und adoptive Transferexperimente konnte ich in dieser Arbeit NK-Zellen als essentielle Mitstreiter in der vaskulären Dysfunktion identifizieren und stellte fest, dass T-bet+LysM+ myelomonozytäre Zellen für die NK-Zellrekrutierung in die Gefäßwand und lokale IFN-gamma Produktion benötigt werden. Damit wurde erstmals NK-Zellen eine essentielle Rolle in der ATII-induzierten vaskulären Dysfunktion zugeschrieben. Außerdem wurde der T-bet-IFN-gamma Signalweg und die gegenseitige Monozyten-NK-Zellaktivierung als ein potentielles therapeutisches Ziel in kardiovaskulären Erkrankungen aufgedeckt. Des Weiteren identifizierte ich in meiner Arbeit MyD88 als ein zentrales Signalmolekül in der ATII-getriebenen Inflammation und vaskulären Gefäßschädigung. MyD88 Defizienz reduzierte den ATII-induzierten Anstieg des systolischen Blutdrucks und die endotheliale und glattmuskuläre vaskuläre Dysfunktion. Zusätzlich waren die vaskuläre Superoxid-Bildung sowie die Expressionslevel der NADPH Oxidase, der wichtigsten Quelle für oxidativem Stress im Gefäß, in ATII-infundierten MyD88-/- Mäusen im Vergleich zum Wildtyp reduziert. Mit Hilfe von durchflusszytometrischen Analysen deckte ich zudem auf, dass die ATII-induzierte Einwanderung von CD45+ Leukozyten, insbesondere CD11b+Ly6G-Ly6Chigh inflammatorischen Monozyten in MyD88-/- Mäusen signifikant abgeschwächt war. Diese Resultate wurden durch immunhistochemische Untersuchung von Aortengewebe auf CD68+, F4/80+ und Nox2+ Makrophagen/Phagozyten sowie Expressionsanalysen von Inflammationsmarkern untermauert. Analysen der mRNA Expression in Aortengewebe zeigten ferner eine in Wildtyp Mäusen nach ATII Infusion tendenziell gesteigerte Expression von inflammatorischen Monozytenmakern sowie eine abnehmende Expression von reparativen Monozytenmarken, während dieser Shift zu einem proinflammatorsichen Phänotyp in MyD88-/- blockiert zu sein schien. Dies zeigt eine Rolle von MyD88 in der terminalen Differenzierung von myelomonozytären Zellen an. Um dies weitergehend zu untersuchen und aufzudecken, ob die MyD88 Effekte abhängig sind von Zellen der hämatopoetischen Linie oder Gewebszellen, wurden Knochenmarktransferexperimente durchgeführt. MyD88 Defizienz in Knochenmark-abstammende Zellen reduzierte die ATII-induzierte vaskuläre Dysfunktion und Infiltration der Gefäßwand mit CD45+ Leukozyten und inflammatorischen myelomonozytären Zellen. Die protektiven Effekte der MyD88 Defizienz in der Angiotensin II-induzierten Inflammation konnten nicht auf Signalwege über die Toll-like Rezeptoren TLR2, -7 oder -9 zurückgeführt werden, wie die Untersuchung der vaskulären Reaktivität entsprechender Knockout Mäuse zeigte. Zusammenfassend konnte ich in meiner Arbeit zeigen, dass die Infiltration der Gefäßwand mit Nox2+AT1R+T-bet+MyD88+ myelomonozytären Zellen und die Wechselwirkung und gegenseitige Aktivierung dieser Zellen mit IFN-gamma produzierenden NK-Zellen eine zentrale Bedeutung in der Pathogenese der Angiotensin II (ATII)-induzierten vaskulären Dysfunktion, Inflammation und arteriellen Hypertonie einnehmen.

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The intervertebral disc (IVD) is a complex avascular organ of viscoelastic properties. The current research focus is to regenerate and to partially restore a degenerated IVD by ‘smart’ biomaterials in combination of cell therapy and/or growth factors. For the two tissues of the IVD, that is, the nucleus pulposus (NP) and the annulus fibrosus (AF), biomaterials of different mechanical properties are needed. The ideal biomaterial to restore the water-rich NP and the tensile-force resistant AF has not been identified yet. The lack of blood vessels and the relative scarcity of specially adapted cells of the IVD organ demand novel concepts of tissue-engineered biological approaches to regenerate or replace the IVD. Injectable biodegradable hydrogels with swelling properties are in focus for NP replacement, whereas electrospun biphasic composites and silk, among other biodegradable polymers, are discussed for AF reinforcement.

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Recent advances in tissue-engineered cartilage open the door to new clinical treatments of joint lesions. Common to all therapies with in-vitro-engineered autografts is the need for optimal fit of the construct to allow screwless implantation and optimal integration into the live joint. Computer-assisted surgery (CAS) techniques are prime candidates to ensure the required accuracy, while at the same time simplifying the procedure. A pilot study has been conducted aiming at assembling a new set of methods to support ankle joint arthroplasty using bioengineered autografts. Computer assistance allows planning of the implant shape on a computed tomography (CT) image, manufacturing the construct according to the plan, and interoperatively navigating the surgical tools for implantation. A rotational symmetric model of the joint surface was used to avoid segmentation of the CT image; new software was developed to determine the joint axis and make the implant shape parameterizable. A complete cycle of treatment from planning to operation was conducted on a human cadaveric foot, thus proving the feasibility of computer-assisted arthroplasty using bioengineered autografts

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Osteoarthritis (OA) is a debilitating disease that is becoming more prevalent in today’s society. OA affects approximately 28 million adults in the United States alone and when present in the knee joint, usually leads to a total knee replacement. Numerous studies have been conducted to determine possible methods to halt the initiation of OA, but the structural integrity of the menisci has been shown have a direct effect on the progression of OA. Menisci are two C-shaped structures that are attached to the tibial plateau and aid in facilitating proper load transmission within the knee. The meniscal cross-section is wedge-like to fit the contour of the femoral condyles and help attenuate stresses on the tibial plateau. While meniscal tears are common, only the outer 1/3 of the meniscus is vascularized and has the capacity to heal, hence tears of the inner 2/3rds are generally treated via meniscectomy, leading to OA. To help combat this OA epidemic, an effective biomimetric meniscal replacement is needed. Numerous mechanical and biochemical studies have been conducted on the human meniscus, but very little is known about the mechanical properties on the nano-scale and how meniscal constituents are distributed in the meniscal cross-section. The regional (anterior, central and posterior) nano-mechanical properties of the meniscal superficial layers (both tibial and femoral contacting) and meniscal deep zone were investigated via nanoindentation to examine the regional inhomogeneity of both the lateral and medial menisci. Additionally, these results were compared to quantitative histological values to better formulate a structure-function relationship on the nano-scale. These data will prove imperative for further advancements of a tissue engineered meniscal replacement.