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1.
Artif Organs ; 45(10): 1208-1218, 2021 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-34036603

RESUMO

As an alternative to the classical tissue engineering approach, bottom-up tissue engineering emerges using building blocks in bioassembly technologies. Spheroids can be used as building blocks to reach a highly complex ordered tissue by their fusion (bioassembly), representing the foundation of biofabrication. In this study, we analyzed the biomechanical properties and the fusion capacity of human adipose stem/stromal cell (ASC) we spheroids during an in vitro model of hypertrophic cartilage established by our research group. Hypertrophic induced-ASC spheroids showed a statistically significant higher Young's modulus at weeks 2 (P < .001) and 3 (P < .0005) compared with non-induced. After fusion, non-induced and induced-ASC spheroids increased the contact area and decreased their pairs' total length. At weeks 3 and 5, induced-ASC spheroids did not fuse completely, and the cells migrate preferentially in the fusion contact region. Alizarin red O staining showed the highest intensity of staining in the fused induced-ASC spheroids at week 5, together with intense staining for collagen type I and osteocalcin. Transmission electron microscopy and element content analysis (X-ray Energy Dispersive Spectroscopy) revealed in the fused quartet at week 3 a crystal-like structure. Hypertrophic induction interferes with the intrinsic capacity of spheroids to fuse. The measurements of contact between spheroids during the fusion process, together with the change in viscoelastic profile to the plastic, will impact the establishment of bioassembly protocols using hypertrophic induced-ASC spheroids as building blocks in biofabrication.


Assuntos
Tecido Adiposo/citologia , Cartilagem/crescimento & desenvolvimento , Células-Tronco Mesenquimais/citologia , Engenharia Tecidual/métodos , Tecido Adiposo/fisiologia , Fenômenos Biomecânicos , Cartilagem/citologia , Cartilagem/ultraestrutura , Células Cultivadas , Humanos , Hipertrofia , Células-Tronco Mesenquimais/fisiologia , Microscopia Eletrônica de Transmissão , Esferoides Celulares/fisiologia , Esferoides Celulares/ultraestrutura , Células Estromais/fisiologia
2.
Artif Organs ; 44(7): E288-E299, 2020 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-31950507

RESUMO

Human adipose stem/stromal cell (ASC) spheroids were used as a serum-free in vitro model to recapitulate the molecular events and extracellular matrix organization that orchestrate a hypertrophic cartilage phenotype. Induced-ASC spheroids (ø = 450 µm) showed high cell viability throughout the period of culture. The expression of collagen type X alpha 1 chain (COLXA1) and matrix metallopeptidase 13 (MMP-13) was upregulated at week 2 in induced-ASC spheroids compared with week 5 (P < .001) evaluated by quantitative real-time PCR. In accordance, secreted levels of IL-6 (P < .0001), IL-8 (P < .0001), IL-10 (P < .0001), bFGF (P < .001), VEGF (P < .0001), and RANTES (P < .0001) were the highest at week 2. Strong in situ staining for collagen type X and low staining for TSP-1 was associated with the increase of hypertrophic genes expression at week 2 in induced-ASC spheroids. Collagen type I, osteocalcin, biglycan, and tenascin C were detected at week 5 by in situ staining, in accordance with the highest expression of alkaline phosphatase (ALPL) gene and the presence of calcium deposits as evaluated by Alizarin Red O staining. Induced-ASC spheroids showed a higher force required to compression at week 2 (P < .0001). The human ASC spheroids under serum-free inducer medium and normoxic culture conditions were induced to a hypertrophic cartilage phenotype, opening a new perspective to recapitulate endochondral ossification in vivo.


Assuntos
Cartilagem/crescimento & desenvolvimento , Condrogênese/fisiologia , Células-Tronco Mesenquimais/fisiologia , Cultura Primária de Células/métodos , Engenharia Tecidual/métodos , Tecido Adiposo/citologia , Cartilagem/citologia , Cartilagem/ultraestrutura , Diferenciação Celular/fisiologia , Células Cultivadas , Colágeno Tipo X/metabolismo , Meios de Cultura Livres de Soro , Matriz Extracelular/metabolismo , Humanos , Hipertrofia , Metaloproteinase 13 da Matriz/metabolismo , Microscopia Eletrônica de Transmissão , Esferoides Celulares/fisiologia , Esferoides Celulares/ultraestrutura , Células Estromais/fisiologia
3.
Pesqui. vet. bras ; 38(7): 1327-1336, July 2018. tab, graf
Artigo em Português | LILACS, VETINDEX | ID: biblio-976454

RESUMO

RESUMO: As biocerâmicas microporosas de fosfatos de cálcio e bifásicas de hidroxiapatita e fosfato tricálcico beta (HA/TCP-β) na forma de biomateriais granulados microporosos, são temas de pesquisas e se destacam como substitutos ósseos em aplicações biomédicas. As biocerâmicas bifásicas são biocompatíveis, bioativas, osteoindutoras e promovem a osteointegração, quando aplicados in vivo ou em meio simulado. Outro ponto diferencial dessas biocerâmicas está associado à capacidade de solubilidade que esses biomateriais apresentam quando aplicados em meio biológico, permitindo a liberação gradual de íons cálcio e fosfatos para o meio biológico, estes são absorvíeis e promovem a neoformação de um novo tecido ósseo. As biocerâmicas bifásicas de fosfatos de cálcio também se apresentam promissores em aplicações traumatológicas na reparação do tecido ósseo traumatizado e na liberação controlada de medicamentos, em tratamentos da estrutura óssea. O desempenho desses biomateriais como substitutos ósseos e na liberação controlada de medicamentos, estão associados, as suas características físicas, químicas, morfológicas e de superfície. O objetivo desse estudo foi realizar a caracterização morfológica, microestrutural dos biomateriais pela técnica de microscopia eletrônica de varredura (MEV), física com difratometria de raios X (DRX) e método de Arthur para determinação da porosidade aberta. A densidade teórica dos biomateriais bifásicos foi determinada pelo método teórico das concentrações bifásicas. Por fim, se realizou avaliação do comportamento da neoformação óssea e osteointegração dos diferentes biomateriais de fosfatos de cálcio em testes in vivo em ovinos. Os testes in vivo foram realizados em tíbias de ovinos com tempo de implantação de 03 meses. Os biomateriais implantados foram hidroxiapatita (HA), fosfato tricálcico-β (TCP-β) e composições bifásicas HA/TCP-β nas proporções: 80/20, 20/80, 70/30 e 30/70. Foram utilizadas 08 ovelhas mestiças Texel, com 12 meses de idade e peso médio de 30 kg (±5 kg), nas quais foram produzidos três defeitos ósseos em cada tíbia, sendo que quatro desses defeitos foram preenchidos por biomateriais, e dois por fragmentos ósseos (autoenxerto), grupo controle. Os animais foram eutanasiados aos 03 meses após a implantação dos biomateriais. Após a eutanásia, foram coletadas as tíbias para avaliação com o uso da técnica de microscopia eletrônica de varredura (MEV). Os resultados encontrados mostram que os biomateriais granulados microporosos são formados por uma morfologia irregular com tamanho de grânulos entre 200 μm e 500μm, outra constatação foi microestrutura microporosa interconectada dos biomateriais. O resultado obtido da porosidade aberta mostrou que os biomateriais apresentam porosidade superior a 68%. A densidade teórica se apresentou semelhante entre os biomateriais granulados de fosfatos de cálcio e sugerem boa capacidade de neoformação óssea para todos os biomateriais, sendo que o bifásico 20/80 apresentou absorção do biomaterial e neoformação óssea mais rápida quando comparada com os outros biomateriais avaliados neste estudo.


ABSTRACT: Microporous bioceramics of calcium phosphate and biphasic hydroxyapatite and tricalcium phosphate beta (HA/TCP- β) in the form of microporous granules biomaterials are research subjects and stand out as bone substitutes in biomedical application. The biphasic bioceramics are biocompatible, bioactive, osteoinductive and promote osseointegration when applied in vivo or through simulated. Another aspect of such differential solubility bioceramics is associated with the capacity that these biomaterials exhibit when applied in biological environment, enabling the gradual release of calcium and phosphate ions to the biological environment they are absorbable and promote neogenesis of new bone tissue. The biphasic bioceramics of calcium phosphate also have promising applications in traumatology in the repair of injured bone and controlled release of drugs in the bone structure treatments. The performance of these biomaterials as bone substitutes and controlled release of drugs, are associated, their physical, chemical, morphological and surface. The aim of this study was to make morphological, microstructural of biomaterials by the technique of scanning electron microscopy (SEM), physics with X-ray diffraction (XRD) and Arthur method for determination of open porosity. The theoretical density of biphasic biomaterials was determined by theoretical method of biphasic concentrations. Finally, we conducted evaluation of osteogenesis and osseointegration behavior of different biomaterials of calcium phosphates in vivo tests on sheep. In vivo tests were performed on tibias of sheep up to of 03 months. The biomaterials implanted were hydroxyapatite (HA), tricalcium phosphate-β (β-TCP) and biphasic compositions as HA/TCP-β in rates: 80/20, 20/80, 70/30 and 30/70. Eight crossbred Texel sheep, with 12 months of age and average weight of 30 kg (±5 kg) were used, in which were produced three bone defects in the tibia, four of these defects were filled with biomaterials, and two by bone fragments (autograft), as control group. The animals were euthanized at 03 months after implantation of biomaterials. After euthanasia, the tibias were collected for evaluation using the scanning electron microscopy technique (SEM). The results show that the microporous biomaterial granules are formed by an irregular morphology with grain size between 200 μm and 500μm, another finding was microporous interconnected microstructure of biomaterials. The result showed that the open porosity of the biomaterials exhibit porosity greater than 68%. The theoretical density was relatively similar between the granulates biomaterials of calcium phosphates and suggest good capacity of osteogenesis for all biomaterials, with the biphasic absorption of the biomaterial introduced 20/80 and more rapid bone formation when compared with other biomaterials evaluated in study.


Assuntos
Animais , Fosfatos de Cálcio/análise , Ovinos/metabolismo , Durapatita/análise
4.
J Biomed Mater Res B Appl Biomater ; 105(4): 820-827, 2017 05.
Artigo em Inglês | MEDLINE | ID: mdl-26777476

RESUMO

Important features of biocements include easy molding and good wettability, hydration, and setting time during its application in biological tissue. Interest in calcium phosphate biocements is directly related to its characteristics of bioactivity, biocompatibility, and crystallographic similarity to bone apatite. This experimental study aimed to understand hydration behavior of calcium phosphate biocements with microstructure and nanostructure, with molar ratios Ca/P = 1.5; 1.6; 1.67; and 1.7 and hydration times of 5 and 30 min. The hydration tests were performed on the same solid/liquid ratio for the four Ca/P compositions. The morphology was observed via scanning electron microscopy and phases were identified with help from X-ray diffraction. The biocements showed similar effects of hydration and gelling for the periods of 5 and 30 min. The results show that these biocements can offer favorable wettability, hydration, and easy molding during the surgical procedure, which could be an innovation in implant fixation and bone tissue repair. © 2016 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater, 105B: 820-827, 2017.


Assuntos
Cimentos Ósseos/química , Fosfatos de Cálcio/química , Molhabilidade , Difração de Raios X
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