Publication:
Polylactide-based materials science strategies to improve tissue-material interface without the use of growth factors or other biological molecules

dc.contributor.authorGritsch L.
dc.contributor.authorConoscenti G.
dc.contributor.authorLa Carrubba V.
dc.contributor.authorNooeaid P.
dc.contributor.authorBoccaccini A.R.
dc.date.accessioned2021-04-05T03:04:56Z
dc.date.available2021-04-05T03:04:56Z
dc.date.issued2019
dc.date.issuedBE2562
dc.description.abstractIn a large number of medical devices, a key feature of a biomaterial is the ability to successfully bond to living tissues by means of engineered mechanisms such as the enhancement of biomineralization on a bone tissue engineering scaffold or the mimicking of the natural structure of the extracellular matrix (ECM). This ability is commonly referred to as “bioactivity”. Materials sciences started to grow interest in it since the development of bioactive glasses by Larry Hench five decades ago. As the main goal in applications of biomedical devices and tissue scaffolds is to obtain a seamless tissue-material interface, achieving optimal bioactivity is essential for the success of most biomaterial-based tissue replacement and regenerative approaches. Polymers derived from lactic acid are largely adopted in the biomedical field, they are versatile, FDA approved and relatively cost-effective. However, as for many other widespread biomedical polymers, they are hydrophobic and lack the intrinsic ability of positively interacting with surrounding tissues. In the last decades scientists have studied many solutions to exploit the positive characteristics of polylactide-based materials overcoming this bottleneck at the same time. The efforts of this research fruitfully produced many effective tissue engineering technologies based on PLA and related biopolymers. This review aims to give an overview on the latest and most promising strategies to improve the bioactivity of lactic acid-based materials, especially focusing on biomolecule-free bulk approaches such as blending, copolymerization or composite fabrication. Avenues for future research to tackle current needs in the field are identified and discussed. © 2018 Elsevier B.V.
dc.format.mimetypeapplication/pdf
dc.identifier.citationMaterials Science and Engineering C. Vol 94, (2019), p.1083-1101
dc.identifier.doi10.1016/j.msec.2018.09.038
dc.identifier.issn9284931
dc.identifier.other2-s2.0-85053931733
dc.identifier.urihttps://hdl.handle.net/20.500.14740/5737
dc.rights.holderScopus
dc.subject.otherBioactive glass
dc.subject.otherBioactivity
dc.subject.otherBiomedical equipment
dc.subject.otherBiomineralization
dc.subject.otherBiomolecules
dc.subject.otherBiopolymers
dc.subject.otherBlending
dc.subject.otherComposite materials
dc.subject.otherCost effectiveness
dc.subject.otherFunctional polymers
dc.subject.otherGrowth (materials)
dc.subject.otherHistology
dc.subject.otherInterfaces (materials)
dc.subject.otherLactic acid
dc.subject.otherPolyesters
dc.subject.otherScaffolds
dc.subject.otherScaffolds (biology)
dc.subject.otherStructure (composition)
dc.subject.otherTissue engineering
dc.subject.otherBiological molecule
dc.subject.otherBiomedical devices
dc.subject.otherBiomedical polymers
dc.subject.otherBone tissue engineering
dc.subject.otherComposite fabrication
dc.subject.otherExtracellular matrices
dc.subject.otherMaterial interfaces
dc.subject.otherPoly lactic acid
dc.subject.otherTissue
dc.subject.otherPolyester
dc.subject.otherPolylactide
dc.subject.otherSignal peptide
dc.subject.otherAnimal
dc.subject.otherChemistry
dc.subject.otherHuman
dc.subject.otherMaterials science
dc.subject.otherSynthesis
dc.subject.otherTissue engineering
dc.subject.otherTissue scaffold
dc.subject.otherAnimals
dc.subject.otherHumans
dc.subject.otherIntercellular Signaling Peptides and Proteins
dc.subject.otherMaterials Science
dc.subject.otherPolyesters
dc.subject.otherTissue Engineering
dc.subject.otherTissue Scaffolds
dc.titlePolylactide-based materials science strategies to improve tissue-material interface without the use of growth factors or other biological molecules
dc.typeReview
dspace.entity.typePublication
swu.datasource.scopushttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85053931733&doi=10.1016%2fj.msec.2018.09.038&partnerID=40&md5=c8553b8bc63b994122f7cdccb9d583c1

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