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1.
Biomed Mater ; 16(2): 025016, 2021 02 18.
Artigo em Inglês | MEDLINE | ID: mdl-33599213

RESUMO

The aim of our research was to study the behaviour of adipose tissue-derived stem cells (ADSCs) and vascular smooth muscle cells (VSMCs) on variously modified poly(L-lactide) (PLLA) foils, namely on pristine PLLA, plasma-treated PLLA, PLLA grafted with polyethylene glycol (PEG), PLLA grafted with dextran (Dex), and the tissue culture polystyrene (PS) control. On these materials, the ADSCs were biochemically differentiated towards VSMCs by a medium supplemented with TGFß1, BMP4 and ascorbic acid (i.e. differentiation medium). ADSCs cultured in a non-differentiation medium were used as a negative control. Mature VSMCs cultured in both types of medium were used as a positive control. The impact of the variously modified PLLA foils and/or differences in the composition of the medium were studied with reference to cell adhesion, growth and differentiation. We observed similar adhesion and growth of ADSCs on all PLLA samples when they were cultured in the non-differentiation medium. The differentiation medium supported the expression of specific early, mid-term and/or late markers of differentiation (i.e. type I collagen, αSMA, calponin, smoothelin, and smooth muscle myosin heavy chain) in ADSCs on all tested samples. Moreover, ADSCs cultured in the differentiation medium revealed significant differences in cell growth among the samples that were similar to the differences observed in the cultures of VSMCs. The round morphology of the VSMCs indicated worse adhesion to pristine PLLA, and this sample was also characterized by the lowest cell proliferation. Culturing VSMCs in the differentiation medium inhibited their metabolic activity and reduced the cell numbers. Both cell types formed the most stable monolayer on plasma-treated PLLA and on the PS control. The behaviour of ADSCs and VSMCs on the tested PLLA foils differed according to the specific cell type and culture conditions. The suitable biocompatibility of both cell types on the tested PLLA foils seems to be favourable for vascular tissue engineering purposes.


Assuntos
Tecido Adiposo/metabolismo , Miócitos de Músculo Liso/citologia , Poliésteres/química , Poliestirenos/química , Células-Tronco/citologia , Engenharia Tecidual/métodos , Animais , Aorta/metabolismo , Materiais Biocompatíveis , Biopolímeros/química , Adesão Celular , Diferenciação Celular/efeitos dos fármacos , Proliferação de Células , Teste de Materiais , Microscopia de Força Atômica , Músculo Liso Vascular/citologia , Oxazinas/química , Polímeros/química , Polissacarídeos/química , Propriedades de Superfície , Suínos , Xantenos/química
2.
Int J Mol Sci ; 21(7)2020 Mar 27.
Artigo em Inglês | MEDLINE | ID: mdl-32230810

RESUMO

Mineralization of hydrogel biomaterials with calcium phosphate (CaP) is considered advantageous for bone regeneration. Mineralization can be both induced by the enzyme alkaline phosphatase (ALP) and promoted by calcium-binding biomolecules, such as plant-derived polyphenols. In this study, ALP-loaded gellan gum (GG) hydrogels were enriched with gallotannins, a subclass of polyphenols. Five preparations were compared, namely three tannic acids of differing molecular weight (MW), pentagalloyl glucose (PGG), and a gallotannin-rich extract from mango kernel (Mangifera indica L.). Certain gallotannin preparations promoted mineralization to a greater degree than others. The various gallotannin preparations bound differently to ALP and influenced the size of aggregates of ALP, which may be related to ability to promote mineralization. Human osteoblast-like Saos-2 cells grew in eluate from mineralized hydrogels. Gallotannin incorporation impeded cell growth on hydrogels and did not impart antibacterial activity. In conclusion, gallotannin incorporation aided mineralization but reduced cytocompatibility.


Assuntos
Biomimética/métodos , Hidrogéis/química , Taninos Hidrolisáveis/metabolismo , Plantas/metabolismo , Polissacarídeos/química , Fosfatase Alcalina/metabolismo , Antibacterianos/farmacologia , Materiais Biocompatíveis , Regeneração Óssea , Calcificação Fisiológica/efeitos dos fármacos , Fosfatos de Cálcio , Humanos , Taninos Hidrolisáveis/farmacologia , Mangifera/química , Minerais/química , Osteoblastos/metabolismo , Extratos Vegetais/química , Polifenóis/química , Polissacarídeos Bacterianos
3.
J Dairy Sci ; 101(1): 28-36, 2018 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-29128214

RESUMO

Recently, milk-derived proteins have attracted attention for applications in the biomedical field such as tissue regeneration. Whey protein isolate (WPI), especially its main component ß-lactoglobulin, can modulate immunity and acts as an antioxidant, antitumor, antiviral, and antibacterial agent. There are very few reports of the application of WPI in tissue engineering, especially in bone tissue engineering. In this study, we tested the influence of different concentrations of WPI on behavior of human osteoblast-like Saos-2 cells, human adipose tissue-derived stem cells (ASC), and human neonatal dermal fibroblasts (FIB). The positive effect on growth was apparent for Saos-2 cells and FIB but not for ASC. However, the expression of markers characteristic for early osteogenic cell differentiation [type-I collagen (COL1) and alkaline phosphatase (ALP)] as well as ALP activity, increased dose-dependently in ASC. Importantly, Saos-2 cells were able to deposit calcium in the presence of WPI, even in a proliferation medium without other supplements that support osteogenic cell differentiation. The results indicate that, depending on the cell type, WPI can act as an enhancer of cell proliferation and osteogenic differentiation. Therefore, enrichment of biomaterials for bone regeneration with WPI seems a promising approach, especially due to the low cost of WPI.


Assuntos
Regeneração Óssea , Osteoblastos/citologia , Osteogênese , Células-Tronco/citologia , Proteínas do Soro do Leite/metabolismo , Tecido Adiposo/citologia , Tecido Adiposo/metabolismo , Fosfatase Alcalina/metabolismo , Animais , Bovinos , Diferenciação Celular , Proliferação de Células , Células Cultivadas , Colágeno Tipo I/metabolismo , Humanos , Osteoblastos/metabolismo , Osteocalcina/metabolismo , Células-Tronco/metabolismo , Engenharia Tecidual
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