Search results for "Tissue engineering"

showing 10 items of 370 documents

3D printing of hybrid biomaterials for bone tissue engineering: Calcium-polyphosphate microparticles encapsulated by polycaprolactone.

2017

Abstract Here we describe the formulation of a morphogenetically active bio-ink consisting of amorphous microparticles (MP) prepared from Ca 2+ and the physiological inorganic polymer, polyphosphate (polyP). Those MP had been fortified by mixing with poly-e-caprolactone (PCL) to allow 3D-bioprinting. The resulting granular PCL/Ca-polyP-MP hybrid material, liquefied by short-time heating to 100 °C, was used for the 3D-printing of tissue-like scaffolds formed by strands with a thickness of 400 µm and a stacked architecture leaving ≈0.5 mm 2 -sized open holes enabling cell migration. The printed composite scaffold turned out to combine suitable biomechanical properties (Young’s modulus of 1.60…

0301 basic medicineScaffoldMaterials sciencePolyestersBiomedical EngineeringNanoparticle02 engineering and technologyBiochemistryBone and BonesBiomaterials03 medical and health scienceschemistry.chemical_compoundCell Line TumorHumansMolecular BiologySaos-2 cellsInorganic polymerTissue EngineeringTissue ScaffoldsRegeneration (biology)BiomaterialGeneral Medicine021001 nanoscience & nanotechnology030104 developmental biologyDurapatitechemistryPolycaprolactonePrinting Three-Dimensional0210 nano-technologyHybrid materialBiotechnologyBiomedical engineeringActa biomaterialia
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Salmon fibrinogen and chitosan scaffold for tissue engineering: in vitro and in vivo evaluation

2018

3D fibrous scaffolds have received much recent attention in regenerative medicine. Use of fibrous scaffolds has shown promising results in tissue engineering and wound healing. Here we report the development and properties of a novel fibrous scaffold that is useful for promoting wound healing. A scaffold made of salmon fibrinogen and chitosan is produced by electrospinning, resulting in a biocompatible material mimicking the structure of the native extracellular matrix (ECM) with suitable biochemical and mechanical properties. The scaffold is produced without the need for enzymes, in particular thrombin, but is fully compatible with their addition if needed. Human dermal fibroblasts culture…

0301 basic medicineScaffoldMaterials scienceSurface PropertiesTissue Engineering Constructs and Cell SubstratesBiomedical EngineeringBiophysicsBiocompatible MaterialsBioengineering02 engineering and technologyRegenerative medicineBiomaterialsChitosanExtracellular matrix03 medical and health scienceschemistry.chemical_compound3D cell cultureThrombinTissue engineeringSalmonmedicineAnimalsHumansCell ProliferationChitosanWound HealingTissue EngineeringTissue Scaffoldsintegumentary systemFibrinogenElectrochemical TechniquesFibroblasts021001 nanoscience & nanotechnologyRats3. Good health030104 developmental biologychemistry0210 nano-technologyWound healingBiomedical engineeringmedicine.drugJournal of Materials Science: Materials in Medicine
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Large strain stimulation promotes extracellular matrix production and stiffness in an elastomeric scaffold model

2016

Mechanical conditioning of engineered tissue constructs is widely recognized as one of the most relevant methods to enhance tissue accretion and microstructure, leading to improved mechanical behaviors. The understanding of the underlying mechanisms remains rather limited, restricting the development of in silico models of these phenomena, and the translation of engineered tissues into clinical application. In the present study, we examined the role of large strip-biaxial strains (up to 50%) on ECM synthesis by vascular smooth muscle cells (VSMCs) micro-integrated into electrospun polyester urethane urea (PEUU) constructs over the course of 3 weeks. Experimental results indicated that VSMC …

0301 basic medicineScaffoldVascular smooth muscleMaterials scienceIn silico0206 medical engineeringMyocytes Smooth MuscleBiomedical Engineering02 engineering and technologyECM (extracellular matrix)ArticleMuscle Smooth VascularBiomaterialsExtracellular matrix03 medical and health sciencesTissue engineeringmedicineAnimalsMechanical conditioningCells CulturedTissue EngineeringTissue ScaffoldsRational designStiffnessModels Theoretical020601 biomedical engineeringBiomaterialElasticityExtracellular MatrixPolyesterElastomeric scaffold030104 developmental biologyElastomersRats Inbred LewMechanics of MaterialsBiophysicsCollagenStress Mechanicalmedicine.symptomMechanical propertieBiomedical engineering
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Human platelet-rich plasma improves the nesting and differentiation of human chondrocytes cultured in stabilized porous chitosan scaffolds

2017

[EN] The clinical management of large-size cartilage lesions is difficult due to the limited regenerative ability of the cartilage. Different biomaterials have been used to develop tissue engineering substitutes for cartilage repair, including chitosan alone or in combination with growth factors to improve its chondrogenic properties. The main objective of this investigation was to evaluate the benefits of combining activated platelet-rich plasma with a stabilized porous chitosan scaffold for cartilage regeneration. To achieve this purpose, stabilized porous chitosan scaffolds were prepared using freeze gelation and combined with activated platelet-rich plasma. Human primary articular chond…

0301 basic medicineShort CommunicationsBiomedical EngineeringMedicine (miscellaneous)Human plateletCartilage tissue engineeringBiomaterialsChitosanlcsh:Biochemistry03 medical and health scienceschemistry.chemical_compoundTissue engineeringActivated platelet-rich plasmamedicinelcsh:QD415-436Cartilage repairPorosityCartilageRegeneration (biology)Stabilized porous chitosantechnology industry and agricultureAnatomyChondrogenesisequipment and supplies030104 developmental biologymedicine.anatomical_structurechemistryMAQUINAS Y MOTORES TERMICOSTERMODINAMICA APLICADA (UPV)Biomedical engineering
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Engineering of Human Skeletal Muscle With an Autologous Deposited Extracellular Matrix

2018

Adult skeletal muscle progenitor cells can be embedded in an extracellular matrix (ECM) and tissue-engineered to form bio-artificial muscles (BAMs), composed of aligned post-mitotic myofibers. The ECM proteins which have been used most commonly are collagen type I and fibrin. Fibrin allows for in vitro vasculogenesis, however, high concentrations of fibrinolysis inhibitors are needed to inhibit degradation of the ECM and subsequent loss of BAM tissue structure. For in vivo implantation, fibrinolysis inhibition may prove difficult or even harmful to the host. Therefore, we adapted in vitro culture conditions to enhance the deposition of de novo synthesized collagen type I gradually replacing…

0301 basic medicinecollagenPhysiologyextracellular matrix02 engineering and technologyFibrinlcsh:PhysiologyExtracellular matrix03 medical and health sciencesHydroxyprolinechemistry.chemical_compoundTissue cultureVasculogenesisTissue engineeringPhysiology (medical)medicinefibrinskeletal muscleOriginal Researchbiologylcsh:QP1-981ChemistrySkeletal muscleviscoelastic propertiesfood and beveragesAnatomy021001 nanoscience & nanotechnologyAscorbic acidCell biology030104 developmental biologymedicine.anatomical_structuretissue engineeringbiology.protein0210 nano-technology
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Multicellular Interactions in 3D Engineered Myocardial Tissue

2018

Cardiovascular disease is a leading cause of death in the US and many countries worldwide. Current cell-based clinical trials to restore cardiomyocyte (CM) health by local delivery of cells have shown only moderate benefit in improving cardiac pumping capacity. CMs have highly organized physiological structure and interact dynamically with non-CM populations, including endothelial cells and fibroblasts. Within engineered myocardial tissue, non-CM populations play an important role in CM survival and function, in part by secreting paracrine factors and cell-cell interactions. In this review, we will summarize the progress of engineering myocardial tissue with pre-formed physiological multice…

0301 basic medicinelcsh:Diseases of the circulatory (Cardiovascular) systemMini Reviewcardiomyocyte02 engineering and technologyDiseaseCardiovascular MedicineBiologyengineered myocardiumfibroblast03 medical and health sciencesParacrine signallingcardiovascular tissue engineeringMyocardial tissueTranslation (biology)021001 nanoscience & nanotechnologyco-culture3. Good healthCell biologystem cellEndothelial stem cellMulticellular organism030104 developmental biologylcsh:RC666-701endothelial cellStem cell0210 nano-technologyCardiology and Cardiovascular MedicineFunction (biology)Frontiers in Cardiovascular Medicine
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Tailoring the Interface of Biomaterials to Design Effective Scaffolds

2018

Tissue engineering (TE) is a multidisciplinary science, which including principles from material science, biology and medicine aims to develop biological substitutes to restore damaged tissues and organs. A major challenge in TE is the choice of suitable biomaterial to fabricate a scaffold that mimics native extracellular matrix guiding resident stem cells to regenerate the functional tissue. Ideally, the biomaterial should be tailored in order that the final scaffold would be (i) biodegradable to be gradually replaced by regenerating new tissue, (ii) mechanically similar to the tissue to regenerate, (iii) porous to allow cell growth as nutrient, oxygen and waste transport and (iv) bioactiv…

0301 basic medicinelcsh:R5-920ScaffoldMaterials sciencelcsh:BiotechnologyBiomedical EngineeringTarget tissueBiomaterialNanotechnology02 engineering and technologyReview021001 nanoscience & nanotechnologyExtracellular matrixScaffold fabrication03 medical and health sciences030104 developmental biologyTissue engineeringlcsh:TP248.13-248.65tissue engineeringchitosanlcsh:Medicine (General)0210 nano-technologybiomaterialsJournal of Functional Biomaterials
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Recombinant mussel protein Pvfp-5β: A potential tissue bioadhesive

2019

During their lifecycle, many marine organisms rely on natural adhesives to attach to wet surfaces for movement and self-defence in aqueous tidal environments. Adhesive proteins from mussels are biocompatible and elicit only minimal immune responses in humans. Therefore these proteins have received increased attention for their potential applications in medicine, biomaterials and biotechnology. The Asian green mussel Perna viridis secretes several byssal plaque proteins, molecules that help anchor the mussel to surfaces. Among these proteins, protein-5β (Pvfp-5β) initiates interactions with the substrate, displacing interfacial water molecules before binding to the surface. Here, we establis…

0301 basic medicinemedicine.disease_causeBiochemistryepidermal growth factor (EGF)law.inventionMiceCell Movementlawbiophysicsstructural biologyrecombinantCells CulturedbiologyChemistryMarine proteinsAdhesionRecombinant ProteinsadhesionProtein Structure and FoldingRecombinant DNAadhesion proteinsbiomaterialsPernaCell SurvivalSurface PropertiesBioadhesivemussel03 medical and health sciencesmedicineAnimalsHumansMolecular BiologyEscherichia coliCell ProliferationTissue Engineering030102 biochemistry & molecular biologyProteinsCell BiologyMusselbiology.organism_classificationEGF-like motifs; Marine proteins; adhesion; adhesion proteins; biomaterials; biophysics; epidermal growth factor (EGF); structural biologyEGF-like motifs030104 developmental biologyStructural biologyCell cultureNIH 3T3 CellsBiophysicsTissue AdhesivesHeLa CellsPerna viridisJournal of Biological Chemistry
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Continuous Electrical Stimulation Affects Initial Growth and Proliferation of Adipose-Derived Stem Cells

2020

The aim of the study was to establish electrical stimulation parameters in order to improve cell growth and viability of human adipose-derived stem cells (hADSC) when compared to non-stimulated cells in vitro. hADSC were exposed to continuous electrical stimulation with 1.7 V AC/20 Hz. After 24, 72 h and 7 days, cell number, cellular surface coverage and cell proliferation were assessed. In addition, cell cycle analysis was carried out after 3 and 7 days. After 24 h, no significant alterations were observed for stimulated cells. At day 3, stimulated cells showed a 4.5-fold increase in cell numbers, a 2.7-fold increase in cellular surface coverage and a significantly increased proliferation.…

0301 basic medicineproliferationMedicine (miscellaneous)Adipose tissueStimulationGeneral Biochemistry Genetics and Molecular BiologyArticle03 medical and health sciences0302 clinical medicineTissue engineeringelectrical stimulationlcsh:QH301-705.5continuous stimulationChemistryCell growth030206 dentistryIn vitroCell biologyCell cycle analysis030104 developmental biologylcsh:Biology (General)Apoptosistissue engineeringhuman adipose-derived stem cellsStem cellalternating currentBiomedicines
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Cutting-edge progress and challenges in stimuli responsive hydrogel microenvironment for success in tissue engineering today.

2020

The field of tissue engineering has numerous potential for modified therapeutic results and has been inspired by enhancements in bioengineering at the recent decades. The techniques of regenerating tissues and assembling functional paradigms that are responsible for repairing, maintaining, and revitalizing lost organs and tissues have affected the entire spectrum of health care studies. Strategies to combine bioactive molecules, biocompatible materials and cells are important for progressing the renewal of damaged tissues. Hydrogels have been utilized as one of the most popular cell substrate/carrier in tissue engineering since previous decades, respect to their potential to retain a 3D str…

0303 health sciences3D bioprintingStimuli responsiveTissue EngineeringTissue ScaffoldsChemistryCell substrateBioprintingPharmaceutical ScienceNanotechnologyBiocompatible MaterialsHydrogels02 engineering and technologyMatrix (biology)021001 nanoscience & nanotechnologyBiocompatible materiallaw.invention03 medical and health sciencesTissue engineeringlawSelf-healing hydrogelsRegenerationViability assay0210 nano-technology030304 developmental biologyJournal of controlled release : official journal of the Controlled Release Society
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