Search results for "tissue engineering"

showing 10 items of 370 documents

An integrated Tissue Engineering approach to Human Bronchial model: Biodegradable Scaffold and Microfluidics Platform

L’ingegneria tissutale è la combinazione di cellule, materiali e metodi di ingegneria, insieme con opportuni fattori biochimici e fisico-chimici, volta a migliorare o sostituire le funzioni biologiche di tessuti danneggiati [1, 2]. A tal proposito supporti porosi e sistemi microfluidici sono utilizzati per scopi di ingegneria tissutale. Scaffold polimerici biodegradabili sono stati sfruttati come supporti strutturali per rigenerare vari tessuti quali ossa, cartilagini, nervi, legamenti, pelle e fegato. Una geometria porosa aperta con canali interconnessi è un prerequisito per la crescita cellulare ad alta densità e per un trasporto di nutrienti, ossigeno e prodotti di scarto metabolici. …

Microfluidics deviceHuman bronchial mucosaSettore ING-IND/24 - Principi Di Ingegneria ChimicaTissue engineering; Biodegradable membranes; Microfluidics devices; Human bronchial mucosa;Tissue engineeringBiodegradable membrane
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Bioactive glass ions as strong enhancers of osteogenic differentiation in human adipose stem cells.

2015

Bioactive glasses are known for their ability to induce osteogenic differentiation of stem cells. To elucidate the mechanism of the osteoinductivity in more detail, we studied whether ionic extracts prepared from a commercial glass S53P4 and from three experimental glasses (2-06, 1-06 and 3-06) are alone sufficient to induce osteogenic differentiation of human adipose stem cells. Cells were cultured using basic medium or osteogenic medium as extract basis. Our results indicate that cells stay viable in all the glass extracts for the whole culturing period, 14 days. At 14 days the mineralization in osteogenic medium extracts was excessive compared to the control. Parallel to the increased mi…

MineralizationMaterials scienceBiomedical EngineeringAdipose tissuechemistry.chemical_elementBiocompatible MaterialsCalciumta3111BiochemistryBone tissue engineeringlaw.inventionBiomaterialsExtracellular matrixlawOsteogenic differentiationHumansBioactive glassMolecular Biologyta217Mesenchymal stem cellCell ProliferationIonsStem CellsMesenchymal stem cellta1182Cell DifferentiationGeneral MedicineIn vitroCell biologychemistryAdipose TissueBioactive glassAlkaline phosphataseGlassStem cellBiotechnologyBiomedical engineeringActa biomaterialia
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Scaffold and scaffold-free self-assembled systems in regenerative medicine.

2016

Self-assembly in tissue engineering refers to the spontaneous chemical or biological association of components to form a distinct functional construct, reminiscent of native tissue. Such self-assembled systems have been widely used to develop platforms for the delivery of therapeutic and/or bioactive molecules and various cell populations. Tissue morphology and functional characteristics have been recapitulated in several self-assembled constructs, designed to incorporate stimuli responsiveness and controlled architecture through spatial confinement or field manipulation. In parallel, owing to substantial functional properties, scaffold-free cell-assembled devices have aided in the developm…

Modular engineeringTissue EngineeringTissue ScaffoldsCell-assembled devicesSettore CHIM/09 - Farmaceutico Tecnologico ApplicativoBiomimetic MaterialsGuided Tissue RegenerationHumansSelf-assemblyRegenerative MedicineDelivery of biologicsStimuli-responsive polymersExtracellular MatrixBiotechnology and bioengineering
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Growth kinetics and characterization of human dental pulp stem cells: Comparison between third molar and first premolar teeth

2015

Background Dental pulp stem cells (DPSCs) play an important role in tissue regeneration. This study compares the growth kinetics and characterization of third molar and first premolar human DPSCs. Material and Methods Dental pulp tissues were isolated from human first premolar and third molar teeth and were digested by treating them with collagenase type I. Single-cell suspensions from each dental pulp were seeded in T25 culture flasks and the media were replaced every 3 days until 70% confluence. The cells were enumerated to determine the population doubling time (PDT). Cells were characterized using flow cytometry, RT-PCR and osteogenic medium for differentiation of DPSCs. Karyotyping ass…

MolarCD34DentistryOdontologíaOperative Dentistry and EndodonticsAndrology030207 dermatology & venereal diseases03 medical and health sciences0302 clinical medicinestomatognathic systemTissue engineeringDental pulp stem cellsPremolarmedicineCD90General Dentistrybusiness.industryChemistryResearchMesenchymal stem cell030206 dentistry:CIENCIAS MÉDICAS [UNESCO]Ciencias de la saludstomatognathic diseasesmedicine.anatomical_structureUNESCO::CIENCIAS MÉDICASStem cellbusinessJournal of Clinical and Experimental Dentistry
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Biomaterials and bioactive molecules to drive differentiation in striated muscle tissue engineering

2015

International audience; The generation of engineered tissues and organs has entered into the clinical practice in response to the chronic lack of organ donors. In particular, for the skeletal and cardiac muscles the translational potential of tissue engineering approaches has clearly been shown, even though the construction of these tissues lags behind others given the hierarchical, highly organized architecture of striated muscles. Failure of the cardiac tissue leads to cardiovascular diseases, which are the leading cause of death in the developed world (Di Felice et al., 2014). On the other hand, there are many clinical cases where the loss of skeletal muscle due to a traumatic injury, an…

Muscle tissueStriated muscle tissuePathologymedicine.medical_specialtyPhysiology030204 cardiovascular system & hematologyRegenerative MedicineRegenerative medicinelcsh:PhysiologyBiomaterials03 medical and health sciencescardiac tissue engineering0302 clinical medicineTissue engineeringPhysiology (medical)[SDV.BBM] Life Sciences [q-bio]/Biochemistry Molecular BiologyMedicine[SDV.BBM]Life Sciences [q-bio]/Biochemistry Molecular Biologyskeletal muscle030304 developmental biologyDenervation0303 health scienceslcsh:QP1-981Tissue Engineeringbusiness.industryRegeneration (biology)Editorial ArticleSkeletal musclevasculature nicheBiomaterial3. Good healthmedicine.anatomical_structureTraumatic injuryscaffoldscardiac tissue engineering; regenerative medicine; scaffolds; skeletal muscle; stem cell transplantation; vasculature nichebusinessStem Cell Transplantation
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High-density ZnO Nanowires as a Reversible Myogenic-Differentiation-Switch

2018

Mesoangioblasts are outstanding candidates for stem-cell therapy and are already being explored in clinical trials. However, a crucial challenge in regenerative medicine is the limited availability of undifferentiated myogenic progenitor cells because growth is typically accompanied by differentiation. Here reversible myogenic-differentiation switching during proliferation is achieved by functionalizing the glass substrate with high-density ZnO nanowires (NWs). Specifically, mesoangioblasts grown on ZnO NWs present a spherical viable undifferentiated cell state without lamellopodia formation during the entire observation time (8 days). Consistently, the myosin heavy chain, typically express…

Myogenic differentiationMaterials scienceCellmuscle differentiation02 engineering and technologyMuscle Development010402 general chemistrySettore BIO/0901 natural sciencesRegenerative medicineZnO nanowireZnO nanowires; mesoangioblasts; muscle differentiation; tissue engineeringTissue engineeringmesoangioblastsMyosinmedicinemesoangioblastGeneral Materials ScienceProgenitor cellNanowiresZno nanowiresSubstrate (chemistry)Cell Differentiation021001 nanoscience & nanotechnology0104 chemical sciencesCell biologymedicine.anatomical_structuretissue engineeringZnO nanowiresZinc Oxide0210 nano-technology
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Physical and biological properties of electrospun poly( d , l ‐lactide)/nanoclay and poly( d , l ‐lactide)/nanosilica nanofibrous scaffold for bone t…

2021

Electrospun scaffolds exhibiting high physical performances with the ability to support cell attachment and proliferation are attracting more and more scientific interest for tissue engineering applications. The inclusion of inorganic nanoparticles such as nanosilica and nanoclay into electrospun biopolymeric matrices can meet these challenging requirements. The silica and clay incorporation into polymeric nanofibers has been reported to enhance and improve the mechanical properties as well as the osteogenic properties of the scaffolds. In this work, for the first time, the physical and biological properties of polylactic acid (PLA) electrospun mats filled with different concentrations of n…

NanocompositeMaterials science0206 medical engineeringtechnology industry and agricultureMetals and AlloysBiomedical Engineering02 engineering and technology021001 nanoscience & nanotechnologyBone tissue020601 biomedical engineeringBiomaterialsContact anglechemistry.chemical_compoundCrystallinitymedicine.anatomical_structureDifferential scanning calorimetryPolylactic acidchemistryChemical engineeringTissue engineeringNanofiberCeramics and Compositesmedicine0210 nano-technologyJournal of Biomedical Materials Research Part A
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Engineered axon tracts within tubular biohybrid scaffolds

2021

[EN] Injuries to the nervous system that involve the disruption of axonal pathways are devastating to the individual and require specific tissue engineering strategies. Here we analyse a cells-biomaterials strategy to overcome the obstacles limiting axon regeneration in vivo, based on the combination of a hyaluronic acid (HA) single-channel tubular conduit filled with poly-L-lactide acid (PLA) fibres in its lumen, with pre-cultured Schwann cells (SCs) as cells supportive of axon extension. The HA conduit and PLA fibres sustain the proliferation of SC, which enhance axon growth acting as a feeder layer and growth factor pumps. The parallel unidirectional ensemble formed by PLA fibres and SC …

Nervous systemmedicine.medical_treatmentBiomedical EngineeringBiocompatible MaterialsAxon tractlaw.inventionCellular and Molecular NeuroscienceDorsal root ganglionTissue engineeringConfocal microscopylawGanglia SpinalmedicineAxonCells CulturedTissue EngineeringChemistryAxon extensionGrowth factorRegeneration (biology)Schwann cell cultureDorsal root ganglion cell cultureHyaluronic acid conduitAxonsNerve RegenerationCell biologymedicine.anatomical_structurenervous systemMAQUINAS Y MOTORES TERMICOSSchwann CellsTERMODINAMICA APLICADA (UPV)Poly-lactic fibres
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Optimization of a decellularized protocol of porcine tracheas. Long-term effects of cryopreservation. A histological study

2021

[EN] Objective: The aim of this study was to optimize a decellularization protocol in the trachea of Sus scrofa domestica (pig) as well as to study the effects of long-term cryopreservation on the extracellular matrix of decellularized tracheas. Methods: Porcine tracheas were decellularized using Triton X-100, SDC, and SDS alone or in combination. The effect of these detergents on the extracellular matrix characteristics of decellularized porcine tracheas was evaluated at the histological, biomechanical, and biocompatibility level. Morphometric approaches were used to estimate the effect of detergents on the collagen and elastic fibers content as well as on the removal of chondrocytes from …

OctoxynolSwine0206 medical engineeringTracheal stenosisBiomedical EngineeringMedicine (miscellaneous)Bioengineering02 engineering and technologyCryopreservationBiomaterialsAndrology03 medical and health sciences0302 clinical medicineMedicineSDSCryopreservationDecellularizationTissue EngineeringTissue Scaffoldsbusiness.industryTracheal histologyDecellularized tracheasAirway tissue engineeringGeneral Medicine020601 biomedical engineeringTracheal StenosisSus scrofa domesticaExtracellular MatrixTrachea030220 oncology & carcinogenesisFISICA APLICADAbusiness
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Bioengineering strategies of the uterus towards improving current investigative models and female reproductive health

2018

In this thesis, we intended to develop tissue-engineering approaches based on decellularized (DC) uterine tissues obtained from whole organs to improve several aspects within reproductive medicine. We hypothesized that that the decellularization of whole uteri from different species has not only the potential to, one day, create tissue-engineered, transplantable organs but that the DC endometrial fraction can also be processed further into thin sections, ECM hydrogels and coatings that can be used as a biocompatible tissue-specific substrate for cell and embryo culture. Moreover, we intended to corroborate if the differences in the cyclically and drastically changing endometrium are transla…

OrganoidEndometrium:CIENCIAS DE LA VIDA::Biología celular::Cultivo celular [UNESCO]UterusUNESCO::CIENCIAS DE LA VIDA::Biología celular::Cultivo celularUNESCO::CIENCIAS DE LA VIDATissue engineeringBioengineeringEmbryo culture:CIENCIAS DE LA VIDA::Biología celular::Cultivo de tejidos [UNESCO]UNESCO::CIENCIAS DE LA VIDA::Biología celular::Cultivo de tejidos:CIENCIAS DE LA VIDA [UNESCO]
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