2019
DOI: 10.1002/adhm.201801226
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3D Electrophysiological Measurements on Cells Embedded within Fiber‐Reinforced Matrigel

Abstract: of the matrix. [9] Mechanical properties such as the stiffness of the 3D surrounding environment are known to affect differentiation of certain cells, [10] and are believed to be critical for neuronal maturation and neurotransmission. [9] More discrete and higher resolved structures, such as those made with additive manufacturing (AM) [11] and electrojetting technology, [12] are promising to provide reproducible conditions. Electrojetting uses electrostatic forces to fabricate monodispersed, nanomicro particle… Show more

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Cited by 24 publications
(28 citation statements)
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References 43 publications
(42 reference statements)
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“…Matrigel, the current gold standard for a rich physiological ECM, but not classical bioink as it lacks shape fidelity and long-term stability, has been used in the field of biofabrication for some time. However, in published studies, Matrigel was used basically as a coating material for 3D printed scaffolds, as the physiological component of a printable matrix mixture with hydrogels like alginate, gelatin or agarose or it was printed into predefined molds (e.g., [38,39,40,41,42]). Here, we developed a method to print pure Matrigel, which, although revealing the poorest printability in comparison with the other inks, was printable with the tumor cells and was able to keep a 3D structure over the culturing period of 14 days without dissolving in the medium.…”
Section: Discussionmentioning
confidence: 99%
“…Matrigel, the current gold standard for a rich physiological ECM, but not classical bioink as it lacks shape fidelity and long-term stability, has been used in the field of biofabrication for some time. However, in published studies, Matrigel was used basically as a coating material for 3D printed scaffolds, as the physiological component of a printable matrix mixture with hydrogels like alginate, gelatin or agarose or it was printed into predefined molds (e.g., [38,39,40,41,42]). Here, we developed a method to print pure Matrigel, which, although revealing the poorest printability in comparison with the other inks, was printable with the tumor cells and was able to keep a 3D structure over the culturing period of 14 days without dissolving in the medium.…”
Section: Discussionmentioning
confidence: 99%
“…Finally, to provide 3D neuronal cell culture models with a weak matrix microenvironment closer to the native tissue, MEW fabricated scaffolds were embedded into Matrigel. [38,41] Those reinforced scaffolds within the Matrigel improved the mechanical properties and therefore the handling of the delicate constructs. [38,41] Another approach to mimic native tissue and its composition was demonstrated by using orthogonal microfiber scaffolds embedded into compressed collagen to design an artificial cornea.…”
Section: Soft Network Compositesmentioning
confidence: 99%
“…MEW is more reproducible than typical electrospinning which can often have chaotic fibre deposition. Schaefer et al (2019) developed a 3D prototype neural model of MEW PCL seeded with fibroblast embedded Matrigel, and demonstrated that the MEW PCL did not interfere with whole cell patch clamp recordings [142]. Neurons are more vulnerable to environmental stressors than fibroblasts, in 2D neuron electrophysiological behaviour was found not be affected when seeded on PCL electrospun fibres [44].…”
Section: Strategies For Biofabricating Neural Modelsmentioning
confidence: 99%