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Cell-Instructive Graphene-Containing Nanocomposites Induce Multinucleated Myotube Formation

Overview of attention for article published in Annals of Biomedical Engineering, March 2016
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Title
Cell-Instructive Graphene-Containing Nanocomposites Induce Multinucleated Myotube Formation
Published in
Annals of Biomedical Engineering, March 2016
DOI 10.1007/s10439-016-1586-6
Pubmed ID
Authors

Akhil Patel, Yingfei Xue, Shilpaa Mukundan, Lisa C. Rohan, Vinayak Sant, Donna B. Stolz, Shilpa Sant

Abstract

Myoblast differentiation is a key step in myogenesis and has long been considered to be controlled mainly by biochemical cues such as growth factors. However, the tissue engineering approaches based on biochemical cues demonstrate low reproducibility as a precise spatial control over their bioactivity is challenging. Recently, substrate micro/nano-structure and electro-responsive properties are recognized for their important roles in myoblast differentiation. In this study, we hypothesized that engineering biophysical features such as nano/micro-fibrous structure and conductive properties into a single biomaterial scaffold will instruct the myoblasts to differentiate into multinucleated myotubes even in the absence of differentiation media. We fabricated nanocomposite scaffolds composed of conductive graphene nanosheets and polycaprolactone (PCL), a widely used biocompatible material. The resulting graphene-PCL scaffolds possess excellent conductivity due to graphene nanosheets and great processability, biodegradability and elastic mechanical properties conferred by PCL. Additionally, physicochemical and mechanical properties of nanocomposite scaffolds can be tuned by varying graphene concentration. Further, graphene-PCL nanocomposites and their 8-week degradation products exhibited remarkable cytocompatibility and promoted adhesion and proliferation of C2C12 mouse myoblast cells. Importantly, these nanocomposite scaffolds induced graphene concentration-dependent differentiation of C2C12 cells into multinucleated myotubes even in normal growth media suggesting their cell-instructive potential. Thus, graphene-PCL nanocomposite scaffolds can serve as a strategy to promote skeletal muscle regeneration without biochemical cues.

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Geographical breakdown

Country Count As %
Chile 1 2%
Unknown 52 98%

Demographic breakdown

Readers by professional status Count As %
Student > Master 12 23%
Student > Ph. D. Student 9 17%
Student > Bachelor 6 11%
Researcher 4 8%
Professor > Associate Professor 3 6%
Other 9 17%
Unknown 10 19%
Readers by discipline Count As %
Engineering 11 21%
Biochemistry, Genetics and Molecular Biology 6 11%
Materials Science 6 11%
Medicine and Dentistry 3 6%
Agricultural and Biological Sciences 2 4%
Other 12 23%
Unknown 13 25%