Search results for "Bone Regeneration"

showing 10 items of 178 documents

Improvement of osteogenic differentiation of human mesenchymal stem cells on composite poly l-lactic acid/nano-hydroxyapatite scaffolds for bone defe…

2020

Tissue engineering offers new approaches to repair bone defects, which cannot be repaired physiologically, developing scaffolds that mimic bone tissue architecture. Furthermore, biomechanical stimulation induced by bioreactor, provides biomechanical cues that regulate a wide range of cellular events especially required for cellular differentiation and function. The improvement of human mesenchymal stem cells (hMSCs) colonization in poly-L-lactic-acid (PLLA)/nano- hydroxyapatite (nHA) composite scaffold was evaluated in terms of cell proliferation (dsDNA content), bone differen- tiation (gene expression and protein synthesis) and ultrastructural analysis by comparing static (s3D) and dynamic…

0106 biological sciences0301 basic medicine3D cultureScaffoldCellular differentiationBioreactorBioengineeringBone tissue01 natural sciencesApplied Microbiology and BiotechnologyBone and BonesCell Line03 medical and health sciencesBioreactorsTissue engineeringPolylactic Acid-Polyglycolic Acid CopolymerPoly-L-lactic-acid/nano-hydroxyapatiteOsteogenesis010608 biotechnologyOsteogenic differentiation w/o growth factorsmedicineHumansBone regenerationCell ProliferationComposite scaffoldSettore ING-IND/24 - Principi Di Ingegneria ChimicaTissue EngineeringTissue ScaffoldsChemistryMesenchymal stem cell3D culture; Bioreactor; Composite scaffold; Osteogenic differentiation w/o growth factors; Poly-L-lactic-acid/nano-hydroxyapatite; Bioreactors; Bone and Bones; Cell Differentiation; Cell Line; Cell Proliferation; Durapatite; Humans; Mesenchymal Stem Cells; Osteogenesis; Polylactic Acid-Polyglycolic Acid Copolymer; Tissue Engineering; Tissue ScaffoldsSettore ING-IND/34 - Bioingegneria IndustrialeCell DifferentiationMesenchymal Stem CellsCell biologyRUNX2030104 developmental biologymedicine.anatomical_structureDurapatiteCell cultureBiotechnologyJournal of bioscience and bioengineering
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Positive effect of platelet rich fibrin on osseointegration

2016

Background Leukocyte-platelet rich fibrin (L-PRF) is a second generation platelet concentrate clinically used to accelerate tissue healing and bone regeneration. Achieving reduced implant osseointegration time could provide immediate or early loading of implants. The aim of this study was to evaluate the L-PRF-induced osseointegration and bone-implant contact (BIC) in an experimental animal model. Material and Methods Twelve 4-month-old New Zealand white rabbits were used. Following general anesthesia, 3-5 mL of blood was obtained from the central artery in rabbit ear and L-PRF was prepared. Two implant cavities (5 mm long and 3 mm in diameter) were created in each tibia with a total of fou…

0106 biological sciencesBone RegenerationDentistry01 natural sciencesOsseointegrationFibrin03 medical and health sciences0302 clinical medicineOsseointegrationPlatelet-Rich Fibrin010608 biotechnologyEarly loadingAnimalsMedicinePlatelet concentrateBone regenerationMatrix for growth factorsGeneral DentistryDental ImplantsFibrinbiologybusiness.industryResearch030206 dentistry:CIENCIAS MÉDICAS [UNESCO]digestive system diseasesPlatelet-rich fibrinExperimental animalOtorhinolaryngologyUNESCO::CIENCIAS MÉDICASbiology.proteinSurgeryRabbitsImplantOral SurgerybusinessPlatelet rich fibrinMedicina Oral Patología Oral y Cirugia Bucal
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Bone regeneration in the stem cell era: safe play for the patient?

2017

The past decade has seen outstanding scientific progress in the field of stem cell (SC) research and clinical application. SCs are convenient both technically and biologically: they are easy to find and to culture and they can differentiate in virtually all tissues and even in whole organs. Induced pluripotent stem cells (iPSs) are a type of pluripotent SC generated in vitro directly from mature cells through the introduction of key transcription factors. The use of iPSs, however tantalizing, poses serious safety concerns because of their genomic instability. Recently, it has been suggested that the main mechanism of SC action relies on paracrine signals. Therefore, the secretome would be p…

0301 basic medicineBone Regenerationbusiness.industryMechanism (biology)Cellular differentiationInduced Pluripotent Stem CellsCell DifferentiationParacrine signalsGeneral MedicineRisk Assessment03 medical and health sciences030104 developmental biologyInnovative TherapiesRheumatologyRisk analysis (engineering)HumansMedicinePatient SafetyStem cellCell differentiation Growth factor Induced pluripotent stem cell Risk Safety Transformation TumourigenesisInduced pluripotent stem cellbusinessBone regenerationStem Cell Transplantation
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Morphogenetically-Active Barrier Membrane for Guided Bone Regeneration, Based on Amorphous Polyphosphate

2017

We describe a novel regeneratively-active barrier membrane which consists of a durable electrospun poly(ε-caprolactone) (PCL) net covered with a morphogenetically-active biohybrid material composed of collagen and inorganic polyphosphate (polyP). The patch-like fibrous collagen structures are decorated with small amorphous polyP nanoparticles (50 nm) formed by precipitation of this energy-rich and enzyme-degradable (alkaline phosphatase) polymer in the presence of calcium ions. The fabricated PCL-polyP/collagen hybrid mats are characterized by advantageous biomechanical properties, such as enhanced flexibility and stretchability with almost unaltered tensile strength of the PCL net. The pol…

0301 basic medicineBone Regenerationcollagen-inducingBarrier membranePolymersPharmaceutical Science02 engineering and technologyMatrix (biology)chemistry.chemical_compoundMiceOsteogenesisPolyphosphatesDrug Discoverystromal cell-derived factor-1Pharmacology Toxicology and Pharmaceutics (miscellaneous)MC3T3-E1 cellsChemistrybiologizationAnatomy3T3 Cells021001 nanoscience & nanotechnology3. Good healthMembranetensile strength/resistanceAlkaline phosphataseCollagen0210 nano-technologyinorganic polyphosphateSurface PropertiesPolyestersArticleAngiopoietin-203 medical and health sciencesCalcification PhysiologicAnimalsHumansBone regenerationTissue EngineeringPolyphosphateMesenchymal stem cellMembrane ProteinsMembranes ArtificialMesenchymal Stem Cellspolypropylene mesh030104 developmental biologyGene Expression RegulationBiophysicsbiologization; hernia repair; inorganic polyphosphate; collagen-inducing; polypropylene mesh; tensile strength/resistance; stromal cell-derived factor-1; MC3T3-E1 cellsNanoparticlesWound healinghernia repairMarine Drugs
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Amorphous, Smart, and Bioinspired Polyphosphate Nano/Microparticles: A Biomaterial for Regeneration and Repair of Osteo-Articular Impairments In-Situ

2018

Using femur explants from mice as an in vitro model, we investigated the effect of the physiological polymer, inorganic polyphosphate (polyP), on differentiation of the cells of the bone marrow in their natural microenvironment into the osteogenic and chondrogenic lineages. In the form of amorphous Ca-polyP nano/microparticles, polyP retains its function to act as both an intra- and extracellular metabolic fuel and a stimulus eliciting morphogenetic signals. The method for synthesis of the nano/microparticles with the polyanionic polyP also allowed the fabrication of hybrid particles with the bisphosphonate zoledronic acid, a drug used in therapy of bone metastases in cancer patients. The r…

0301 basic medicineBone Regenerationlong bone defects; bone marrow cells; inorganic polyphosphate; microparticles; bisphosphonates; <i>Runx2</i>; <i>Sox9</i>; cathepsin-K; tumor metastases; human mesenchymal stem cellsmedicine.medical_treatmentBiocompatible MaterialsCore Binding Factor Alpha 1 SubunitZoledronic Acidlcsh:ChemistryMiceRunx2OsteogenesisPolyphosphatesFemurlcsh:QH301-705.5tumor metastasesSpectroscopymicroparticlescathepsin-KDiphosphonatesTissue ScaffoldsChemistryImidazolesBiomaterialSOX9 Transcription FactorGeneral MedicineUp-RegulationComputer Science ApplicationsCell biologyRUNX2medicine.anatomical_structureinorganic polyphosphateChondrogenesisSox9medicine.drugArticleCatalysisChondrocyteInorganic Chemistryhuman mesenchymal stem cells03 medical and health sciencesOsteoclastmedicineAnimalsHumansPhysical and Theoretical Chemistrybone marrow cellsbisphosphonatesMolecular BiologyOrganic ChemistryMesenchymal stem cellMesenchymal Stem CellsBisphosphonateRatslong bone defects030104 developmental biologyZoledronic acidlcsh:Biology (General)lcsh:QD1-999Gene Expression RegulationNanoparticlesBone marrowInternational Journal of Molecular Sciences
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Injectable Bone Substitute Based on β-TCP Combined With a Hyaluronan-Containing Hydrogel Contributes to Regeneration of a Critical Bone Size Defect T…

2015

In the present in vivo study, the regenerative potential of a new injectable bone substitute (IBS) composed of beta-tricalcium phosphate (β-TCP) and hyaluronan was tested in a rabbit distal femoral condyle model. To achieve this, 2 defects of 6 mm in diameter and 10 mm in length were drilled into each femur condyle in a total of 12 animals. For each animal, 1 hole was filled with the substitute material, and the other was left empty to serve as the control. After 1, 3, and 6 months, the regenerative process was analyzed by radiography as well as by histological and histomorphometrical analysis. The results revealed that bone tissue formation took place through osteoconductive processes over…

0301 basic medicineCalcium PhosphatesBone RegenerationDentistry02 engineering and technologyBone tissue03 medical and health sciencesIn vivoInjectable bonemedicineAnimalsBone formationHyaluronic AcidBone regenerationChemistrybusiness.industryRegeneration (biology)HydrogelsFemur condyle021001 nanoscience & nanotechnologyRegenerative process030104 developmental biologymedicine.anatomical_structureBone SubstitutesRabbitsOral Surgery0210 nano-technologybusinessThe Journal of oral implantology
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CD34+cells seeded in collagen scaffolds promote bone formation in a mouse calvarial defect model

2017

Bone tissue engineering (BTE) holds promise for managing the clinical problem of large bone defects. However, clinical adoption of BTE is limited due to limited vascularization of constructs, which could be circumvented by pre-cultivation of osteogenic and endothelial derived cells in natural-based polymer scaffolds. However, until now not many studies compared the effect of mono- and cocultures pre-seeded in collagen before implantation. We utilized a mouse calvarial defect model and compared five groups of collagen scaffolds: a negative control of a collagen scaffold alone, a positive control treated with BMP-7, monocultures of either human osteoblasts (hOBs) or CD34+ cells, and a cocultu…

0301 basic medicineCalvarial defectMaterials scienceAngiogenesisCd34 cellsBiomedical EngineeringCD34Bone healingCell biologyBiomaterials03 medical and health sciences030104 developmental biologyBone formationBone regenerationCollagen scaffoldBiomedical engineeringJournal of Biomedical Materials Research Part B: Applied Biomaterials
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Gene therapy for chondral and osteochondral regeneration: is the future now?

2017

Gene therapy might represent a promising strategy for chondral and osteochondral defects repair by balancing the management of temporary joint mechanical incompetence with altered metabolic and inflammatory homeostasis. This review analysed preclinical and clinical studies on gene therapy for the repair of articular cartilage defects performed over the last 10 years, focussing on expression vectors (non-viral and viral), type of genes delivered and gene therapy procedures (direct or indirect). Plasmids (non-viral expression vectors) and adenovirus (viral vectors) were the most employed vectors in preclinical studies. Genes delivered encoded mainly for growth factors, followed by transcripti…

0301 basic medicineCartilage ArticularExpression vectorPathologymedicine.medical_specialtyCell signalingCartilage repair; Expression vectors; Gene therapy procedures; Osteoarthritis; Regenerative medicine; Molecular Medicine; Molecular Biology; Pharmacology; Cellular and Molecular Neuroscience; Cell BiologyBone RegenerationInflammatory arthritisGenetic enhancementGene therapy procedureOsteoarthritisViral vector03 medical and health sciencesCellular and Molecular NeuroscienceCartilage repairChondrocytesInterferonSettore BIO/13 - Biologia ApplicataOsteoarthritismedicineAnimalsHumansRegenerationMolecular BiologyPharmacologyExpression vectorbusiness.industryRegeneration (biology)Cell BiologyGenetic Therapymedicine.disease030104 developmental biologyRegenerative medicineCancer researchMolecular MedicineOsteoarthritibusinessmedicine.drugCellular and molecular life sciences : CMLS
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Dental pulp stem cells for bone tissue engineering: a review of the current literature and a look to the future.

2018

The aim of this narrative review is to investigate the implication of mesenchymal stem cells harvested from human dental pulp in in vivo bone tissue regeneration. We focused on studies related to roles of human dental pulp stem cells in in vivo bone regeneration. A total of 1021 studies were identified; after the assessment of eligibility, only 39 studies were included in the review. The evaluated information of the studies regards the experimental strategies (e.g., the isolation method, the scaffold, the in vivo animal models). The overall main evidences highlighted from the analysis are that dental pulp stem cells and human-exfoliated deciduous teeth stem cells supported by a suitable sc…

0301 basic medicineEmbryologyBiomedical EngineeringDentistryregenerative medicinehuman dental pulpBone tissueRegenerative medicinebone03 medical and health sciences0302 clinical medicinestomatognathic systemTissue engineeringDental pulp stem cellsMedicineBone regenerationbusiness.industryRegeneration (biology)Mesenchymal stem cell030206 dentistrystem cellstomatognathic diseases030104 developmental biologymedicine.anatomical_structuretissue engineeringStem cellbusinessRegenerative medicine
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Bioactive potential of silica coatings and its effect on the adhesion of proteins to titanium implants

2018

There is an ever-increasing need to develop dental implants with ideal characteristics to achieve specific and desired biological response in the scope of improve the healing process post-implantation. Following that premise, enhancing and optimizing titanium implants through superficial treatments, like silica sol-gel hybrid coatings, are regarded as a route of future research in this area. These coatings change the physicochemical properties of the implant, ultimately affecting its biological characteristics. Sandblasted acid-etched titanium (SAE-Ti) and a silica hybrid sol-gel coating (35M35G30T) applied onto the Ti substrate were examined. The results of in vitro and in vivo tests and t…

0301 basic medicineGene Expression02 engineering and technologychemistry.chemical_compoundMiceColloid and Surface ChemistryCoatingCoated Materials Biocompatiblebone regenerationOsteogenesisTitaniumChemistrySurfaces and InterfacesGeneral MedicineAdhesion021001 nanoscience & nanotechnologySilicon DioxideRabbits0210 nano-technologyBiotechnologyTitaniumSilicon dioxideSurface Propertieschemistry.chemical_elementengineering.materialOsseointegrationPhase Transitionosteogenesis03 medical and health sciencesproteomicsIn vivoOsseointegrationCell Line Tumordental implantsAnimalsPhysical and Theoretical ChemistryBone regenerationDental ImplantsosteoimmunologyOsteoblastsTibiaInterleukin-6Complement System ProteinsAlkaline Phosphatase030104 developmental biologyengineeringBiophysicsImplantapolipoproteinsBiomarkers
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