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In vitro myogenesis induced by human recombinant elastin-like proteins
- Source :
- Biomaterials. 67
- Publication Year :
- 2015
-
Abstract
- Mammalian adult skeletal muscle has a limited ability to regenerate after injury, usage or trauma. A promising strategy for successful regenerative technology is the engineering of bio interfaces that mimic the characteristics of the extracellular matrix. Human elastin-like polypeptides (HELPs) have been synthesized as biomimetic materials that maintain some peculiar properties of the native protein. We developed a novel Human Elastin Like Polypeptide obtained by fusing the elastin-like backbone to a domain present in the α2 chain of type IV collagen, containing two RGD motives. We employed this peptide as adhesion substrate for C2C12 myoblasts and compared its effects to those induced by two other polypeptides of the HELP series. Myoblast adhered to all HELPs coatings, where they assumed morphology and cytoarchitecture that depended on the polypeptide structure. Adhesion to HELPs stimulated at a different extent cell proliferation and differentiation, the expression of Myosin Heavy Chain and the fusion of aligned fibers into multinucleated myotubes. Adhesion substrates significantly altered myotubes stiffness, measured by Atomic Force Microscopy, and differently affected the cells Ca(2+) handling capacity and the maturation of excitation-contraction coupling machinery, evaluated by Ca(2+) imaging. Overall, our findings indicate that the properties of HELP biopolymers can be exploited for dissecting the molecular connections underlying myogenic differentiation and for designing novel substrates for skeletal muscle regeneration.
- Subjects :
- Neutrophils
Biomimetic materials
Muscle Fibers, Skeletal
Microscopy, Atomic Force
Muscle Development
Potassium Chloride
Extracellular matrix
Mice
Coated Materials, Biocompatible
Skeletal muscle regeneration
Myosin
Myocyte
Cell adhesion
Elastin-like polypeptides
Excitation-contraction coupling
Intracellular calcium
Excitation Contraction Coupling
biology
Myogenesis
Cell Differentiation
Recombinant Proteins
Cell biology
medicine.anatomical_structure
Biochemistry
Mechanics of Materials
C2C12
Materials science
Cell Survival
Molecular Sequence Data
Biophysics
Bioengineering
Cell Line
Biomaterials
Caffeine
medicine
Cell Adhesion
Animals
Humans
Amino Acid Sequence
Calcium Signaling
Cell Shape
Elastin-like polypeptides Biomimetic materials Cell adhesion Skeletal muscle regeneration Excitation-contraction coupling Intracellular calcium
Skeletal muscle
Elastin
Ceramics and Composites
biology.protein
Calcium
Peptides
Subjects
Details
- ISSN :
- 18785905
- Volume :
- 67
- Database :
- OpenAIRE
- Journal :
- Biomaterials
- Accession number :
- edsair.doi.dedup.....32c78a4abe9ab46de2f34f4be8eac2ab