In the field of tissue engineering the choice of materials is of great importance given the possibility to use biocompatible polymers produced by means of biotechnology.A large number of synthetic and natural material...In the field of tissue engineering the choice of materials is of great importance given the possibility to use biocompatible polymers produced by means of biotechnology.A large number of synthetic and natural materials have been used to this purpose and processed into scaffolds using Electrospinning technique.Among materials that could be used for the fabrication of scaffold and degradable membranes,natural polymers such as collagen,elastin or fibroin offer the possibility to design structures strictly similar to the extracellular matrix(ECM).Biotechnology and genetic engineering made possible the advent of a new class of biopolymers called protein-based polymers.One example is represented by the silk-elastin-proteins that combine the elasticity and resilience of elastin with the high tensile strength of silk-fibroin and display engineered bioactive sequences.In this work,we use electrospinning technique to produce a fibrous scaffold made of the corecombinamer Silk-ELR.Obtained fibres have been characterized from the morphological point of view.Homogeneity and morphology have been explored using Scanning Electron Microscopy.A thorough study regarding the influence of Voltage,flow rate and distance have been carried out to determine the appropriate parameters to obtain the fibrous mats without defects and with a good distribution of diameters.Cytocompatibility has also been in vitro tested.For the first time we use the co-recombinamer Silk-ELR for the fabrication of a 2.5 angioplasty balloon coating.This structure could be useful as a coated scaffold for the regeneration of intima layer of vessels.展开更多
基金funds provided by“THE GRAIL”(Tissue in Host Engineering Guided Regeneration of Arterial Intima Layer)projectThe project is funded by the European Union’s‘Seventh Framework’Programme for research,technological development and demonstration under Grant Agreement no.HEALTH.2011.1.4-2-278557European Commission(NMP-2014-646075,MSCA-ITN-2014-642687),MINECO of the Spanish Government(PCIN-2015-010,MAT2015-68901-R,MAT2016-78903-R),Junta de Castilla y Leo´n(VA015U16)and Centro en Red de Medicina Regenerativa y Terapia Celular de Castilla y Leo´n.
文摘In the field of tissue engineering the choice of materials is of great importance given the possibility to use biocompatible polymers produced by means of biotechnology.A large number of synthetic and natural materials have been used to this purpose and processed into scaffolds using Electrospinning technique.Among materials that could be used for the fabrication of scaffold and degradable membranes,natural polymers such as collagen,elastin or fibroin offer the possibility to design structures strictly similar to the extracellular matrix(ECM).Biotechnology and genetic engineering made possible the advent of a new class of biopolymers called protein-based polymers.One example is represented by the silk-elastin-proteins that combine the elasticity and resilience of elastin with the high tensile strength of silk-fibroin and display engineered bioactive sequences.In this work,we use electrospinning technique to produce a fibrous scaffold made of the corecombinamer Silk-ELR.Obtained fibres have been characterized from the morphological point of view.Homogeneity and morphology have been explored using Scanning Electron Microscopy.A thorough study regarding the influence of Voltage,flow rate and distance have been carried out to determine the appropriate parameters to obtain the fibrous mats without defects and with a good distribution of diameters.Cytocompatibility has also been in vitro tested.For the first time we use the co-recombinamer Silk-ELR for the fabrication of a 2.5 angioplasty balloon coating.This structure could be useful as a coated scaffold for the regeneration of intima layer of vessels.