Mechanical Properties and Morphological Alterations in Fiber-Based Scaffolds Affecting Tissue Engineering Outcomes

被引:21
|
作者
Dolgin, James [1 ,2 ]
Hanumantharao, Samerender Nagam [3 ]
Farias, Stephen [1 ,2 ]
Simon Jr, Carl G. [4 ]
Rao, Smitha [3 ,5 ,6 ,7 ]
机构
[1] Materic LLC, 1100 W St Ste 323, Baltimore, MD 21230 USA
[2] Dipole Mat Inc, 1100 W St Ste 323, Baltimore, MD 21230 USA
[3] Michigan Technol Univ, Dept Biomed Engn, 1400 Townsend Dr, Houghton, MI 49931 USA
[4] Natl Inst Stand & Technol NIST, 100 Bur Dr, Gaithersburg, MD 20899 USA
[5] Michigan Technol Univ, Great Lakes Res Ctr, 1400 Townsend Dr, Houghton, MI 49931 USA
[6] Michigan Technol Univ, Hlth Res Inst, 1400 Townsend Dr, Houghton, MI 49931 USA
[7] Michigan Technol Univ, Dept Biol Sci, 1400 Townsend Dr, Houghton, MI 49931 USA
关键词
tissue engineering; scaffolds; mechanotransduction; biophysical cues; electrospinning; MESENCHYMAL STEM-CELLS; RETINAL-PIGMENT EPITHELIUM; ELECTROSPUN FIBROUS SCAFFOLDS; ARTIFICIAL BRUCHS MEMBRANE; OSTEOGENIC-DIFFERENTIATION; MYOGENIC DIFFERENTIATION; NANOFIBER SCAFFOLDS; POLYMER SCAFFOLDS; TAYLOR CONE; SURFACE-TOPOGRAPHY;
D O I
10.3390/fib11050039
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Electrospinning is a versatile tool used to produce highly customizable nonwoven nanofiber mats of various fiber diameters, pore sizes, and alignment. It is possible to create electrospun mats from synthetic polymers, biobased polymers, and combinations thereof. The post-processing of the end products can occur in many ways, such as cross-linking, enzyme linking, and thermal curing, to achieve enhanced chemical and physical properties. Such multi-factor tunability is very promising in applications such as tissue engineering, 3D organs/organoids, and cell differentiation. While the established methods involve the use of soluble small molecules, growth factors, stereolithography, and micro-patterning, electrospinning involves an inexpensive, labor un-intensive, and highly scalable approach to using environmental cues, to promote and guide cell proliferation, migration, and differentiation. By influencing cell morphology, mechanosensing, and intracellular communication, nanofibers can affect the fate of cells in a multitude of ways. Ultimately, nanofibers may have the potential to precisely form whole organs for tissue engineering, regenerative medicine, and cellular agriculture, as well as to create in vitro microenvironments. In this review, the focus will be on the mechanical and physical characteristics such as porosity, fiber diameter, crystallinity, mechanical strength, alignment, and topography of the nanofiber scaffolds, and the impact on cell proliferation, migration, and differentiation.
引用
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页数:40
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