951 resultados para Guided Tissue Regeneration
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Projeto de Pós-Graduação/Dissertação apresentado à Universidade Fernando Pessoa como parte dos requisitos para obtenção do grau de Mestre em Medicina Dentária
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The use of stem cells for tissue regeneration and repair is advancing both at the bench and bedside. Stem cells isolated from bone marrow are currently being tested for their therapeutic potential in a variety of clinical conditions including cardiovascular injury, kidney failure, cancer, and neurological and bone disorders. Despite the advantages, stem cell therapy is still limited by low survival, engraftment, and homing to damage area as well as inefficiencies in differentiating into fully functional tissues. Genetic engineering of mesenchymal stem cells is being explored as a means to circumvent some of these problems. This review presents the current understanding of the use of genetically engineered mesenchymal stem cells in human disease therapy with emphasis on genetic modifications aimed to improve survival, homing, angiogenesis, and heart function after myocardial infarction. Advancements in other disease areas are also discussed.
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Ag+- and Zn2+-exchanged zeolites zeolites and clays have been used as coatings and in composites to confer broad-spectrum antimicrobial properties on a range of technical and biomedical materials. 11 angstrom tobermorite is a bioactive layer lattice ion exchanger whose potential as a carrier for Ag+ and Zn2+ ions in antimicrobial formulations has not yet been explored. In view of this, batch Ag+- and Zn2+-exchange kinetics of two structurally distinct synthetic 11 angstrom tobermorites and their subsequent bactericidal action against Staphylococcus aureus and Pseudomonas aeruginosa are reported. During the exchange reactions, Ag+ ions were found to replace labile interlayer cations; whereas, Zn2+ ions also displaced structural Ca2+ ions from the tobermorite lattice. In spite of these different mechanisms, a simple pseudo-second-order model provided a suitable description of both exchange processes (R-2 >= 0.996). The Ag+- and Zn2+-exchanged tobermorite phases exhibited marked bacteriostatic effects against both bacteria, and accordingly, their potential for use as antimicrobial materials for in situ bone tissue regeneration is discussed. (C) 2008 Elsevier Ltd. All rights reserved.
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Macroporosity(>100µm) in bone void fillers is a known prerequisite for tissue regeneration, but recent literature has highlighted the added benefit of microporosity(0.5 - 10µm). The aim of this study was to compare the in vitro performances of a novel interconnective microporous hydroxyapatite (HA) derived from red algae to four clinically available macroporous calcium phosphate (CaP) bone void fillers. The use of algae as a starting material for this novel void filler overcomes the issue of sustainability, which overshadows continued use of scleractinian coral in the production of some commercially available materials, namely Pro-OsteonTM and Bio-Coral®. This study investigated the physicochemical properties of each bone voidfiller material using x-ray diffraction, fourier transform infrared spectroscopy, inductive coupled plasma, and nitrogen gas absorption and mercury porosimetry. Biochemical analysis, XTT, picogreen and alkaline phosphatase assays were used to evaluate the biological performances of the five materials. Results showed that algal HA is non-toxic to human foetal osteoblast (hFOB) cells and supports cell proliferation and differentiation. The preliminary in vitro testing of microporous algal-HA suggests that it is comparable to the four clinically approved macroporous bone void fillers tested. The results demonstrate that microporous algal HA has good potential for use in vivo and in new tissue engineered strategies for hard tissue repair.
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Aims: Recent ability to derive endothelial cells (ECs) from induced pluripotent stem (iPS) cells holds a great therapeutic potential for personalised medicine and stem cell therapy. We aimed that better understanding of the complex molecular signals that are evoked during iPS cell differentiation towards ECs may allow specific targeting of their activities to enhance cell differentiation and promote tissue regeneration.
Methods and Results: In this study we have generated mouse iPS cells from fibroblasts using established protocol. When iPS cells were cultivated on type IV mouse collagen-coated dishes in differentiation medium, cell differentiation toward vascular lineages were observed. To study the molecular mechanisms of iPS cell differentiation, we found that miR-199b is involved in EC differentiation. A step-wise increase in expression of miR-199 was detected during EC differentiation. Notably, miR-199b targeted the Notch ligand JAG1, resulting in VEGF transcriptional activation and secretion through the transcription factor STAT3. Upon shRNA-mediated knockdown of the Notch ligand JAG1, the regulatory effect of miR-199b was ablated and there was robust induction of STAT3 and VEGF during EC differentiation. Knockdown of JAG1 also inhibited miR-199b-mediated inhibition of iPS cell differentiation towards SMCs. Using the in vitro tube formation assay and implanted Matrigel plugs, in vivo, miR-199b also regulated VEGF expression and angiogenesis.
Conclusions: This study indicates a novel role for miR-199b as a regulator of the phenotypic switch during vascular cell differentiation derived from iPS cells by regulating critical signaling angiogenic responses.
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The search for ideal biomaterials is still on-going for tissue regeneration. In this study, blends of Poly ε-caprolactone (PCL) with Poly l-lactic acid (PLLA), Nalidixic Acid (NA) and Polyethylene glycol (PEG) were prepared. Mechanical and thermal properties of the blends were investigated by tensile and flexural analysis, DSC, TGA, WXRD, MFI, BET, SEM and hot stage optical microscopy. Results showed that the loading of PLLA caused a significant decrease in tensile strength and almost total eradication of the elongation at break of PCL matrix, especially after PEG and NA addition. Increased stiffness was also noted with additional NA, PEG and PLLA, resulting in an increase in the flexural modulus of the blends.
Isothermal degradation indicated that bulk PCL, PLLA and the blends were thermally stable at 200°C for the duration of 2h making extrusion of the blends at this temperature viable. Morphological study showed that increasing the PLLA content and addition of the very low viscosity PEG and powder NA decreased the Melt Flow Indexer and increased the viscosity.
At the higher temperature the PLLA begins to soften and eventually melts allowing for increased flow and, coupling this with, the natural increase in MFI caused by temperature is enhanced further. The PEG and NA addition increased dramatically the pore volume which is important for cell growth and flow transport of nutrients and metabolic waste.
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The ability to reprogram induced pluripotent stem (iPS) cells from somatic cells may facilitate significant advances in regenerative medicine. MicroRNAs (miRNAs) are involved in a number of core biological processes, including cardiogenesis, hematopoietic lineage differentiation and oncogenesis. An improved understanding of the complex molecular signals that are required for the differentiation of iPS cells into endothelial cells (ECs) may allow specific targeting of their activity in order to enhance cell differentiation and promote tissue regeneration. The present study reports that miR‑199a is involved in EC differentiation from iPS cells. Augmented expression of miR‑199a was detected during EC differentiation, and reached higher levels during the later stages of this process. Furthermore, miR‑199a inhibited the differentiation of iPS cells into smooth muscle cells. Notably, sirtuin 1 was identified as a target of miR‑199a . Finally, the ability of miR‑199a to induce angiogenesis was evaluated in vitro, using Matrigel plugs assays. This may indicate a novel function for miR‑199a as a regulator of the phenotypic switch during vascular cell differentiation. The present study provides support to the notion that with an understanding of the molecular mechanisms underlying vascular cell differentiation, stem cell regenerative therapy may ultimately be developed as an effective treatment for cardiovascular disease.
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Desde há muitas décadas que é sabido que os organismos vivos, em especial os tecidos, reagem fisicamente a estímulos eléctricos, podendo esses efeitos reproduzirem-se numa libertação de químicos endógenos, ou deformar a sua estrutura física. O tecido ósseo por si só é considerado um material/tecido piezoeléctrico, deformando-se mecanicamente quando lhe é induzido um estímulo eléctrico e vice-versa, ou seja, produz um potencial eléctrico quando sofre uma tracção ou compressão mecânica. A hipótese de que um material ferroeléctrico possa vir a produzir efeitos no desempenho deste tipo de tecidos é então proposta, como por exemplo, para uma melhor, mais rápida e eficaz regeneração óssea. Estes mesmos materiais ferroeléctricos podem porventura alterar as cargas de superfície dos tecidos vivos de modo a atrair, atrasar ou até impedir o fluxo iónico de elementos químicos específicos responsáveis pelo processo de regeneração. São escolhidos então o niobato de lítio e o tantalato de lítio como cerâmicos ferroeléctricos e foi estudada pela primeira vez a sua bioactividade in vitro, esperando-se encontrar pistas relativas à sua bioactividade in vivo. Estes cerâmicos ferroeléctricos foram seleccionados devido às suas importantes propriedades piezoeléctricas e ferroeléctricas. Estas propriedades podem abrir um novo e importante leque de aplicações biomédicas caso estes cerâmicos sejam bioactivos. Este trabalho foi dividido em 3 fases: (i) sintetização dos pós de niobato de lítio e tantalato de lítio, (ii) caracterização dos pós e (iii) preparação das amostras e (iv) estudo da bioactividade destes cerâmicos ferroeléctricos. Os pós foram produzidos através de um processo simples de mistura/moagem seguido de calcinação. Foram estudadas as fases cristalinas presentes através de Difracção de raios-X (DRX) e avaliadas as características morfológicas destes pós, nomeadamente o diâmetro de partículas e área superficial específica. De modo a simular o ambiente do plasma humano, foi produzido sinteticamente um “Simulated Body Fluid” (SBF). Seguidamente as amostras foram imersas nesse ambiente líquido por 1, 3, 7, 15 e 21 dias. Após remoção dos pós foram realizadas uma série de análises de modo a estudar a sua bioactividade. De entre estes testes destacam-se a microscopia electrónica de varrimento (SEM/EDS), DRX e espectroscopia de Infravermelho por transformada de Fourier com reflectância total atenuada (FTIR-ATR). Embora não tenham sido detectadas alterações no DRX realizado aos pós, verificou-se a formação de aglomerados de fosfato de cálcio na superfície dos pós através do SEM, resultados estes, reforçados pelo EDS e FTIR-ATR. Estes precipitados de fosfato de cálcio indiciam a capacidade destes pós cerâmicos ferroeléctricos se comportarem como bioactivos em contacto com tecidos ósseos in vivo.
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O conceito de bioatividade surgiu com a descoberta, no início década de 70, de que algumas composições vítreas (ex.: 45S5 Bioglass®), tinham a capacidade de estabelecer uma ligação direta e estável com os tecidos vivos. Desde então, este grupo de biomateriais tem vindo a receber uma atenção cada vez maior por parte dos investigadores, tendo como motivação principal a busca de novas composições com propriedades mais adequadas para a regeneração óssea do que as composições comercialmente disponíveis. Na presente tese, avaliou-se o desempenho in vivo de duas composições de biovidro do sistema diopsite (CaMgSi2O6) - fluorapatite (Ca5(PO4)3F) - fosfato tricálcico (3CaO•P2O5) aplicados em defeitos ósseos de tamanho não crítico em carneiros, tendo também sido avaliada a biocompatibilidade dos biomateriais através da aplicação subcutânea de placas dos mesmos vidros. O trabalho realizado também incluiu a avaliação dos materiais in vitro, através de estudos de biomineralização em fluido corporal simulado e estudos de degradação. Os biomateriais foram comparados com o biovidro 45S5 Bioglass®, sendo que em termos de bioatividade in vitro, as duas composições investigadas apresentaram um maior potencial bioativo, levando à formação de uma camada superficial de hidroxiapatite carbonatada, em contraste com a formação de calcite na composição comercial, sob condições idênticas. Os testes de degradação in vitro também apresentaram resultados melhores para as duas novas composições, traduzidos por variações de pH e taxas de degradação menores do que os observados no caso do 45S5 Bioglass®. A avaliação in vivo dos implantes subcutâneos permitiu apurar a biocompatibilidade dos biovidros testados, tendo sido considerados ligeiramente irritantes. Os resultados relativos à aplicação dos pós de vidro bioativo nos defeitos ósseos não foram obtidos em tempo útil de modo a poderem ser incluídos na presente tese. Considerando o desempenho in vitro e a biocompatibilidade dos materiais estudados, estes podem apontar-se como materiais promissores para aplicações em engenharia de tecidos, particularmente na regeneração do tecido ósseo.
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A paradigm shift is taking place from using transplanting tissue and synthetic implants to a tissue engineering approach that aims to regenerate damaged tissues by combining cells from the body with highly porous scaffold biomaterials, which act as templates, guiding the growth of new tissue. The central focus of this thesis was to produce porous glass and glass-ceramic scaffolds that exhibits a bioactive and biocompatible behaviour with specific surface reactivity in synthetic physiological fluids and cell-scaffold interactions, enhanced by composition and thermal treatments applied. Understanding the sintering behaviour and the interaction between the densification and crystallization processes of glass powders was essential for assessing the ideal sintering conditions for obtaining a glass scaffolds for tissue engineering applications. Our main goal was to carry out a comprehensive study of the bioactive glass sintering, identifying the powder size and sintering variables effect, for future design of sintered glass scaffolds with competent microstructures. The developed scaffolds prepared by the salt sintering method using a 3CaO.P2O5 - SiO2 - MgO glass system, with additions of Na2O with a salt, NaCl, exhibit high porosity, interconnectivity, pore size distribution and mechanical strength suitable for bone repair applications. The replacement of 6 % MgO by Na2O in the glass network allowed to tailor the dissolution rate and bioactivity of the glass scaffolds. Regarding the biological assessment, the incorporation of sodium to the composition resulted in an inibition cell response for small periods. Nevertheless it was demonstrated that for 21 days the cells response recovered and are similar for both glass compositions. The in vitro behaviour of the glass scaffolds was tested by introducing scaffolds to simulated body fluid for 21 days. Energy-dispersive Xray spectroscopy and SEM analyses proved the existence of CaP crystals for both compositions. Crystallization forming whitlockite was observed to affect the dissolution behaviour in simulated body fluid. By performing different heat treatments, it was possible to control the bioactivity and biocompatability of the glass scaffolds by means of a controlled crystallization. To recover and tune the bioactivity of the glass-ceramic with 82 % crystalline phase, different methods have been applied including functionalization using 3- aminopropyl-triethoxysilane (APTES). The glass ceramic modified surface exhibited an accelerated crystalline hydroxyapatite layer formation upon immersion in SBF after 21 days while the as prepared glass-ceramic had no detected formation of calcium phosphate up to 5 months. A sufficient mechanical support for bone tissue regeneration that biodegrade later at a tailorable rate was achievable with the glass–ceramic scaffold. Considering the biological assessment, scaffolds demonstrated an inductive effect on the proliferation of cells. The cells showed a normal morphology and high growth rate when compared to standard culture plates. This study opens up new possibilities for using 3CaO.P2O5–SiO2–MgO glass to manufacture various structures, while tailoring their bioactivity by controlling the content of the crystalline phase. Additionally, the in vitro behaviour of these structures suggests the high potential of these materials to be used in the field of tissue regeneration.
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Tese de doutoramento, Ciências Biomédicas (Biologia Celular e Molecular), Universidade de Lisboa, Faculdade de Medicina, 2014
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Transforming growth factor beta (TGF-beta) and platelet-derived growth factor A (PDGFAlpha) play a central role in tissue morphogenesis and repair, but their interplay remain poorly understood. The nuclear factor I C (NFI-C) transcription factor has been implicated in TGF-beta signaling, extracellular matrix deposition, and skin appendage pathologies, but a potential role in skin morphogenesis or healing had not been assessed. To evaluate this possibility, we performed a global gene expression analysis in NFI-C(-/-) and wild-type embryonic primary murine fibroblasts. This indicated that NFI-C acts mostly to repress gene expression in response to TGF-beta1. Misregulated genes were prominently overrepresented by regulators of connective tissue inflammation and repair. In vivo skin healing revealed a faster inflammatory stage and wound closure in NFI-C(-/-) mice. Expression of PDGFA and PDGF-receptor alpha were increased in wounds of NFI-C(-/-) mice, explaining the early recruitment of macrophages and fibroblasts. Differentiation of fibroblasts to contractile myofibroblasts was also elevated, providing a rationale for faster wound closure. Taken together with the role of TGF-beta in myofibroblast differentiation, our results imply a central role of NFI-C in the interplay of the two signaling pathways and in regulation of the progression of tissue regeneration.
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Le traitement du cancer à l’aide d’une exposition aux radiations ionisantes (RI) peut mener au développement de plusieurs effets secondaires importants, dont un retard de réparation et de régénération des tissus. Les mécanismes responsables de ces effets demeurent largement inconnus encore aujourd’hui, ce qui a pour effet de limiter le développement d’approches thérapeutiques. À l’aide d’un modèle de guérison de plaie cutanée chez la souris, nous avons cherché à déterminer les mécanismes par lesquels l’exposition aux RI limite la régénération de la peau. Nos résultats démontrent que l’induction de la "stromal-derived growth factor 1α" (SDF-1α), une cytokine normalement surexprimée dans les tissus hypoxiques, est sévèrement diminuée dans les plaies de souris irradiées versus non-irradiées. Ce défaut corrèle avec un retard de guérison des plaies et est encore évident plusieurs mois suivant l’exposition aux RI, suggérant qu’il y a une altération permanente de la capacité de la peau à se réparer. Parce que SDF-1α est secrété principalement par les fibroblastes du derme, nous avons évalué le potentiel des cellules stromales multipotentes (MSCs), qui sont reconnues pour secréter des niveaux élevés de SDF-1α, à accélérer la régénération de la peau chez les souris irradiées. L’injection de MSCs en périphéries des plaies a mené à une accélération remarquable de la guérison de la peau chez les souris exposées aux RI. Les actions des MSCs étaient principalement paracrines, dû au fait que les cellules n’ont pas migré à l’extérieur de leur site d’injection et ne se sont pas différentiées en kératinocytes. L’inhibition spécifique de l’expression de SDF-1α a mené à une réduction drastique de l’efficacité des MSCs à accélérer la fermeture de plaie indiquant que la sécrétion de SDF-1α par les MSCs est largement responsable de leur effet bénéfique. Nous avons découvert aussi qu’un des mécanismes par lequel SDF-1α accélère la guérison de plaie implique l’augmentation de la vascularisation au niveau de la peau blessée. Les résultats présentés dans ce mémoire démontrent collectivement que SDF-1α est une importante cytokine dérégulée au niveau des plaies cutanées irradiées, et que le déclin du potentiel de régénération des tissus qui est observé suivant une exposition au RI peut être renversé, s’il est possible de restaurer le microenvironnement de la blessure avec un support stromal adéquat.
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Le traitement du cancer à l’aide d’une exposition aux radiations ionisantes peut mener au développement de plusieurs effets secondaires importants, dont un retard de réparation et de régénération du tissu hématopoïétique. Les mécanismes responsables de ces effets demeurent encore inconnus, ce qui limite le développement de nouvelles approches thérapeutiques. À l’aide d’un modèle murin de prise de greffe, nos résultats démontrent que l’endommagement du microenvironnement par l’irradiation a un impact limitant sur le nichage hématopoïétique. Parce que le microenvironnement est composé principalement de cellules dérivées des cellules souches mésenchymateuses (CSM), nous avons évalué le potentiel des CSM à régénérer le tissu hématopoïétique par la reconstitution de la niche osseuse. Cette thérapie a mené à une augmentation remarquable du nichage hématopoïétique chez les souris irradiées. Les causes moléculaires impliquées dans le nichage hématopoïétiques sont encore inconnues, mais nous avons remarqué l’augmentation de la sécrétion de la cytokine « granulocyte-colony stimulating factor » (G-CSF) dans l’espace médullaire suite à l’irradiation. Le G-CSF est impliqué dans la mobilisation cellulaire et est fort possiblement nuisible à une prise de greffe. Nous avons évalué le potentiel d’une thérapie à base de CSM sécrétant le récepteur soluble du G-CSF afin de séquestrer le G-CSF transitoirement et les résultats obtenus démontrent que le blocage du G-CSF favorise le nichage hématopoïétique. Globalement, les données présentées dans ce mémoire démontrent que le microenvironnement osseux et le niveau de G-CSF dans la moelle sont importants dans le processus de nichage hématopoïétique et que la baisse du potentiel de régénération du tissu hématopoïétique suite à l’irradiation peut être renversée à l’aide d’une thérapie cellulaire de CSM génétiquement modifiées ou non.
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L'arthrose ou ostéoarthrite (OA) est la plus commune des maladies chroniques associées au vieillissement. La multiplicité des loci et des polymorphismes associés à l'OA suggère l'implication de nombreuses voies de signalisation. La plupart des voies empruntées partagent des points en commun avec le processus d'ossification endochondrale. Dans l'arthrose, la réinitiation de ce processus pourrait être responsable de la dégradation du cartilage et de la présence d'ostéophytes. Un des gènes ayant fait surface autant dans l'OA que dans le développement musculosquelettique est PITX1. Contrairement à ce que son nom l'indique, PITX1 n'est pas seulement exprimé dans la glande pituitaire mais également dans l'os, le cartilage, les muscles et les fibroblastes. Pitx1 joue un rôle clé dans l'identité des membres inférieurs et son inactivation complète chez la souris mène à un phénotype ressemblant aux membres supérieurs. Moins sévère, son inactivation partielle provoque des symptômes apparentés à l'arthrose précoce chez la souris vieillissante. Chez l'humain, une perte d'expression de PITX1 est observée dans le cartilage OA de concert avec une augmentation des protéines EXTL3, REG1 et PARP1. Ces dernières pourraient favoriser la phase initiale de régénération associée à l'arthrose. Pour induire la prolifération des chondrocytes, de bas niveaux de PITX1 sont nécessaires. À l'inverse, de hauts niveaux de PITX1 pourraient prévenir la prolifération et être responsables du statut différencié des chondrocytes articulaires normaux. L'étude des mécanismes de régulation du gène PITX1 a mené à l'identification d'un co-répresseur, nommé prohibitine (PHB1), lié sur une région promotrice distale. PHB1 est normalement retrouvé au niveau des mitochondries mais son accumulation nucléaire semble corréler avec la perte de PITX1 et l'initiation de l'OA. Cette découverte pourrait avoir un impact sur le diagnostic et d'éventuels traitements visant à prévenir l'apparition de l'arthrose.