» Articles » PMID: 29239103

Out-of-Plane 3D-Printed Microfibers Improve the Shear Properties of Hydrogel Composites

Overview
Journal Small
Date 2017 Dec 15
PMID 29239103
Citations 21
Authors
Affiliations
Soon will be listed here.
Abstract

One challenge in biofabrication is to fabricate a matrix that is soft enough to elicit optimal cell behavior while possessing the strength required to withstand the mechanical load that the matrix is subjected to once implanted in the body. Here, melt electrowriting (MEW) is used to direct-write poly(ε-caprolactone) fibers "out-of-plane" by design. These out-of-plane fibers are specifically intended to stabilize an existing structure and subsequently improve the shear modulus of hydrogel-fiber composites. The stabilizing fibers (diameter = 13.3 ± 0.3 µm) are sinusoidally direct-written over an existing MEW wall-like structure (330 µm height). The printed constructs are embedded in different hydrogels (5, 10, and 15 wt% polyacrylamide; 65% poly(2-hydroxyethyl methacrylate) (pHEMA)) and a frequency sweep test (0.05-500 rad s , 0.01% strain, n = 5) is performed to measure the complex shear modulus. For the rheological measurements, stabilizing fibers are deposited with a radial-architecture prior to embedding to correspond to the direction of the stabilizing fibers with the loading of the rheometer. Stabilizing fibers increase the complex shear modulus irrespective of the percentage of gel or crosslinking density. The capacity of MEW to produce well-defined out-of-plane fibers and the ability to increase the shear properties of fiber-reinforced hydrogel composites are highlighted.

Citing Articles

Research Progress in the Field of Tumor Model Construction Using Bioprinting: A Review.

Yu J, Zhang Y, Ran R, Kong Z, Zhao D, Zhao W Int J Nanomedicine. 2024; 19:6547-6575.

PMID: 38957180 PMC: 11217009. DOI: 10.2147/IJN.S460387.


Three-Dimensional Printing Strategies for Enhanced Hydrogel Applications.

Omidian H, Mfoafo K Gels. 2024; 10(4).

PMID: 38667639 PMC: 11049339. DOI: 10.3390/gels10040220.


Covalent Grafting of Functionalized MEW Fibers to Silk Fibroin Hydrogels to Obtain Reinforced Tissue Engineered Constructs.

Viola M, Ainsworth M, Mihajlovic M, Cedillo-Servin G, van Steenbergen M, van Rijen M Biomacromolecules. 2024; 25(3):1563-1577.

PMID: 38323427 PMC: 10934835. DOI: 10.1021/acs.biomac.3c01147.


Orthotopic equine study confirms the pivotal importance of structural reinforcement over the pre-culture of cartilage implants.

de Ruijter M, Diloksumpan P, Dokter I, Brommer H, Smit I, Levato R Bioeng Transl Med. 2024; 9(1):e10614.

PMID: 38193127 PMC: 10771555. DOI: 10.1002/btm2.10614.


Recent advances in melt electro writing for tissue engineering for 3D printing of microporous scaffolds for tissue engineering.

Loewner S, Heene S, Baroth T, Heymann H, Cholewa F, Blume H Front Bioeng Biotechnol. 2022; 10:896719.

PMID: 36061443 PMC: 9428513. DOI: 10.3389/fbioe.2022.896719.


References
1.
Engh C, Bobyn J, Glassman A . Porous-coated hip replacement. The factors governing bone ingrowth, stress shielding, and clinical results. J Bone Joint Surg Br. 1987; 69(1):45-55. DOI: 10.1302/0301-620X.69B1.3818732. View

2.
Hanson Shepherd J, Parker S, Shepherd R, Gillette M, Lewis J, Nuzzo R . 3D Microperiodic Hydrogel Scaffolds for Robust Neuronal Cultures. Adv Funct Mater. 2011; 21(1):47-54. PMC: 3120232. DOI: 10.1002/adfm.201001746. View

3.
Visser J, Melchels F, Jeon J, van Bussel E, Kimpton L, Byrne H . Reinforcement of hydrogels using three-dimensionally printed microfibres. Nat Commun. 2015; 6:6933. DOI: 10.1038/ncomms7933. View

4.
Lee S, Lee H, Choi J, Koh W, Myoung J, Hur J . Periodic array of polyelectrolyte-gated organic transistors from electrospun poly(3-hexylthiophene) nanofibers. Nano Lett. 2009; 10(1):347-51. DOI: 10.1021/nl903722z. View

5.
Skylar-Scott M, Gunasekaran S, Lewis J . Laser-assisted direct ink writing of planar and 3D metal architectures. Proc Natl Acad Sci U S A. 2016; 113(22):6137-42. PMC: 4896727. DOI: 10.1073/pnas.1525131113. View