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Smart ECM-Based Electrospun Biomaterials for Skeletal Muscle Regeneration.
Politi, Sara; Carotenuto, Felicia; Rinaldi, Antonio; Di Nardo, Paolo; Manzari, Vittorio; Albertini, Maria Cristina; Araneo, Rodolfo; Ramakrishna, Seeram; Teodori, Laura.
Afiliación
  • Politi S; Department of Fusion and Technologies for Nuclear Safety and Security, Diagnostic and Metrology (FSN-TECFIS-DIM), ENEA, CR Frascati, 00044 Rome, Italy.
  • Carotenuto F; Department of Clinical Science and Translational Medicine, University of Rome "Tor Vergata", 00133 Rome Italy.
  • Rinaldi A; Department of Fusion and Technologies for Nuclear Safety and Security, Diagnostic and Metrology (FSN-TECFIS-DIM), ENEA, CR Frascati, 00044 Rome, Italy.
  • Di Nardo P; Department of Clinical Science and Translational Medicine, University of Rome "Tor Vergata", 00133 Rome Italy.
  • Manzari V; Interdepartmental Center for Regenerative Medicine (CIMER), University of Rome "Tor Vergata", 00133 Rome, Italy.
  • Albertini MC; Department of Sustainability (SSPT), ENEA, 00123 Rome, Italy.
  • Araneo R; Department of Clinical Science and Translational Medicine, University of Rome "Tor Vergata", 00133 Rome Italy.
  • Ramakrishna S; Interdepartmental Center for Regenerative Medicine (CIMER), University of Rome "Tor Vergata", 00133 Rome, Italy.
  • Teodori L; L.L. Levshin Institute of Cluster Oncology, I. M. Sechenov First Medical University, Moscow 119991, Russia.
Nanomaterials (Basel) ; 10(9)2020 Sep 09.
Article en En | MEDLINE | ID: mdl-32916791
ABSTRACT
The development of smart and intelligent regenerative biomaterials for skeletal muscle tissue engineering is an ongoing challenge, owing to the requirement of achieving biomimetic systems able to communicate biological signals and thus promote optimal tissue regeneration. Electrospinning is a well-known technique to produce fibers that mimic the three dimensional microstructural arrangements, down to nanoscale and the properties of the extracellular matrix fibers. Natural and synthetic polymers are used in the electrospinning process; moreover, a blend of them provides composite materials that have demonstrated the potential advantage of supporting cell function and adhesion. Recently, the decellularized extracellular matrix (dECM), which is the noncellular component of tissue that retains relevant biological cues for cells, has been evaluated as a starting biomaterial to realize composite electrospun constructs. The properties of the electrospun systems can be further improved with innovative procedures of functionalization with biomolecules. Among the various approaches, great attention is devoted to the "click" concept in constructing a bioactive system, due to the modularity, orthogonality, and simplicity features of the "click" reactions. In this paper, we first provide an overview of current approaches that can be used to obtain biofunctional composite electrospun biomaterials. Finally, we propose a design of composite electrospun biomaterials suitable for skeletal muscle tissue regeneration.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Nanomaterials (Basel) Año: 2020 Tipo del documento: Article País de afiliación: Italia

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Nanomaterials (Basel) Año: 2020 Tipo del documento: Article País de afiliación: Italia