Nanopatterned muscle cell patches for enhanced myogenesis and dystrophin expression in a mouse model of muscular dystrophy.
Explore this paper's citation graph
Summary
The results demonstrate the feasibility of utilizing biomimetic substrates not only as platforms for studying the influences of the ECM on skeletal muscle function and maturation, but also to create transplantable muscle cell patches for the treatment of chronic and acute muscle diseases or injuries.
- Type
- article
- Published
- 2014-02-01
- Cited by
- 92
- References
- 63
- OpenAlex
- https://openalex.org/W2011305371
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:25281801
Keywords
Myogenesis, MyoD, Myogenin, Muscular dystrophy, Dystrophin
References
- Single-cell analysis of regulatory gene expression in quiescent and activated mouse skeletal muscle satellite cells.
- Stem Cell Therapies to Treat Muscular Dystrophy
- Epithelial contact guidance on well-defined micro- and nanostructured substrates
- Local force and geometry sensing regulate cell functions
- Poly(lactic-co-glycolic acid): carbon nanofiber composites for myocardial tissue engineering applications.
- Myosin light chain 3F regulatory sequences confer regionalized cardiac and skeletal muscle expression in transgenic mice
- 3D Timelapse Analysis of Muscle Satellite Cell Motility
- Engineering skeletal muscle tissue – new perspectives in vitro and in vivo
- Guided three-dimensional growth of functional cardiomyocytes on polyethylene glycol nanostructures.
- Skeletal muscle tissue engineering
- Skeletal and cardiac myopathies in mice lacking utrophin and dystrophin: a model for Duchenne muscular dystrophy.
- Multifunctionalized electrospun silk fibers promote axon regeneration in central nervous system
- Dystroglycan: an extracellular matrix receptor linked to the cytoskeleton.
- Pattern of Pax7 expression during myogenesis in the posthatch chicken establishes a model for satellite cell differentiation and renewal
- Mechanosensitivity of fibroblast cell shape and movement to anisotropic substratum topography gradients
- ‘Green mice’ as a source of ubiquitous green cells
- Direct Isolation of Satellite Cells for Skeletal Muscle Regeneration
- Deficiency of a glycoprotein component of the dystrophin complex in dystrophic muscle
- Advances in myogenic cell transplantation and skeletal muscle tissue engineering.
- A distinct profile of myogenic regulatory factor detection within Pax7+ cells at S phase supports a unique role of Myf5 during posthatch chicken myogenesis
Cited by
- Engineered Muscle Tissues for Disease Modeling and Drug Screening Applications.
- Biodegradable Nerve Guidance Conduit with Microporous and Micropatterned Poly(lactic-co-glycolic acid)-Accelerated Sciatic Nerve Regeneration.
- Nanofiber Yarn/Hydrogel Core-Shell Scaffolds Mimicking Native Skeletal Muscle Tissue for Guiding 3D Myoblast Alignment, Elongation, and Differentiation.
- Nanopatterned Human iPSC-based Model of a Dystrophin-Null Cardiomyopathic Phenotype
- Engineering multi-layered skeletal muscle tissue by using 3D microgrooved collagen scaffolds.
- Capillary force lithography: the versatility of this facile approach in developing nanoscale applications.
- Biomaterials based strategies for skeletal muscle tissue engineering: existing technologies and future trends.
- Naturally derived and synthetic scaffolds for skeletal muscle reconstruction
- The influence of anisotropic nano- to micro-topography on in vitro and in vivo osteogenesis.
- Coaxing stem cells for skeletal muscle repair
- Thermoresponsive Nanofabricated Substratum for the Engineering of Three-Dimensional Tissues with Layer-by-Layer Architectural Control
- Implantable microfluidic device for the formation of three-dimensional vasculature by human endothelial progenitor cells
- Bio-inspired oligovitronectin-grafted surface for enhanced self-renewal and long-term maintenance of human pluripotent stem cells under feeder-free conditions.
- Biodegradable Nanotopography Combined with Neurotrophic Signals Enhances Contact Guidance and Neuronal Differentiation of Human Neural Stem Cells.
- Efficient myogenic commitment of human mesenchymal stem cells on biomimetic materials replicating myoblast topography
- Electroconductive nanopatterned substrates for enhanced myogenic differentiation and maturation
- Mesoporous silica particle-PLA-PANI hybrid scaffolds for cell-directed intracellular drug delivery and tissue vascularization.
- Formation of elongated fascicle-inspired 3D tissues consisting of high-density, aligned cells using sacrificial outer molding.
- Extracellular matrix-immobilized nanotopographical substrates for enhanced myogenic differentiation.
- A nanotopography approach for studying the structure-function relationships of cells and tissues
Related papers
- Sequential expression of myogenic regulatory factors in bovine skeletal muscle and the satellite cell culture
- Failure of Myf5 to support myogenic differentiation without myogenin, MyoD, and MRF4.
- Sequential expression of myogenic regulatory factors in bovine skeletal muscle and the satellite cell culture
- Involvement of myogenic regulator factors during fusion in the cell line C2C12.
- Quantitative comparison of the expression of myogenic regulatory factors in flounder (Paralichthys olivaceus) embryos and adult tissues
- Quantitative comparison of the expression of myogenic regulatory factors in flounder (Paralichthys olivaceus) embryos and adult tissues
- Developmental patterns in the expression of Myf5, MyoD, myogenin, and MRF4 during myogenesis.
- A distinct profile of myogenic regulatory factor detection within Pax7+ cells at S phase supports a unique role of Myf5 during posthatch chicken myogenesis
- Induced early expression of mrf4 but not myog rescues myogenesis in the myod/myf5 double-morphant zebrafish embryo
- Function of the myogenic regulatory factors Myf5, MyoD, Myogenin and MRF4 in skeletal muscle, satellite cells and regenerative myogenesis.