Published July 1, 2021 | Version v1
Journal article

Biofabrication of muscle fibers enhanced with plant viral nanoparticles using surface chaotic flows

  • 1. Centro de Biotecnología-FEMSA, Tecnológico de Monterrey, 64849 Monterrey, México (Mexico)
  • 2. Department of Biomedical Engineering, University of Connecticut, Farmington, CT 06030 (United States)
  • 3. Centro de Biotecnología y Genómica de Plantas, Universidad Politécnica de Madrid—Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria (CBGP, UPM-INIA), Campus Montegancedo, Pozuelo de Alarcón, Madrid 28223 (Spain)

Description

Multiple human tissues exhibit fibrous nature. Therefore, the fabrication of hydrogel filaments for tissue engineering is a trending topic. Current tissue models are made of materials that often require further enhancement for appropriate cell attachment, proliferation and differentiation. Here we present a simple strategy, based on the use of surface chaotic flows amenable to mathematical modeling, to fabricate continuous, long and thin filaments of gelatin methacryloyl (GelMA). The fabrication of these filaments is achieved by chaotic advection in a finely controlled and miniaturized version of the journal bearing system. A drop of GelMA pregel is injected on a higher-density viscous fluid (glycerin) and a chaotic flow is applied through an iterative process. The millimeter-scale hydrogel drop is exponentially deformed and elongated to generate a meter-scale fiber, which was then polymerized under UV-light exposure. Computational fluid dynamic (CFD) simulations are conducted to determine the characteristics of the flow and design the experimental conditions for fabrication of the fibers. GelMA fibers were effectively used as scaffolds for C2C12 myoblast cells. Experimental results demonstrate an accurate accordance with CFD simulations for the predicted length of the fibers. Plant-based viral nanoparticles (i.e. Turnip mosaic virus; TuMV) were then integrated to the hydrogel fibers as a secondary nano-scaffold for cells for enhanced muscle tissue engineering. The addition of TuMV significantly increased the metabolic activity of the cell-seeded fibers (p* < 0.05), strengthened cell attachment throughout the first 28 d, improved cell alignment, and promoted the generation of structures that resemble natural mammal muscle tissues. Chaotic two-dimensional-printing is proven to be a viable method for the fabrication of hydrogel fibers. The combined use of thin and long GelMA hydrogel fibers enhanced with flexuous virions offers a promising alternative for scaffolding of muscle cells and show potential to be used as cost-effective models for muscle tissue engineering purposes. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1758-5090/abd9d7

Additional details

Identifiers

Publishing Information

Journal Title
Biofabrication (Online)
Journal Volume
13
Journal Issue
3
Journal Page Range
[15 p.]
ISSN
1758-5090

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
53043638
Subject category
S60: APPLIED LIFE SCIENCES;
Descriptors DEI
ANIMAL TISSUES; BRASSICA; FABRICATION; FLUID MECHANICS; HYDROGELS; MATHEMATICAL MODELS; MYOBLASTS
Descriptors DEC
BODY; COLLOIDS; DISPERSIONS; FOOD; GELS; MAGNOLIOPHYTA; MAGNOLIOPSIDA; MECHANICS; MUSCLES; PLANTS; VEGETABLES