Literature DB >> 29862935

Combining electrospun nanofibers with cell-encapsulating hydrogel fibers for neural tissue engineering.

Ryan J Miller1, Cheook Y Chan1,2, Arjun Rastogi1, Allison M Grant1,2, Christina M White1, Nicole Bette1, Nicholas J Schaub1,3, Joseph M Corey1,3,4,5,6.   

Abstract

A promising component of biomaterial constructs for neural tissue engineering are electrospun fibers, which differentiate stem cells and neurons as well as direct neurite growth. However, means of protecting neurons, glia, and stem cells seeded on electrospun fibers between lab and surgical suite have yet to be developed. Here we report an effort to accomplish this using cell-encapsulating hydrogel fibers made by interfacial polyelectrolyte complexation (IPC). IPC-hydrogel fibers were created by interfacing acid-soluble chitosan (AsC) and cell-containing alginate and spinning them on bundles of aligned electrospun fibers. Primary spinal astrocytes, cortical neurons, or L929 fibroblasts were mixed into alginate hydrogels prior to IPC-fiber spinning. The viability of each cell type was assessed at 30 min, 4 h, 1 d, and 7 d after encapsulation in IPC hydrogels. Some neurons were encapsulated in IPC-hydrogel fibers made from water-soluble chitosan (WsC). Neurons were also stained with Tuj1 and assessed for neurite extension. Neuron survival in AsC-fibers was worse than astrocytes in AsC-fibers (p < 0.05) and neurons in WsC-fibers (p < 0.05). As expected, neuron and glia survival was worse than L929 fibroblasts (p < 0.05). Neurons in IPC-hydrogel fibers fabricated with WsC extended neurites robustly, while none in AsC fibers did. Neurons remaining inside IPC-hydrogel fibers extended neurites inside them, while others de-encapsulated, extending neurites on electrospun fibers, which did not fully integrate with IPC-hydrogel fibers. This study demonstrates that primary neurons and astrocytes can be encapsulated in IPC-hydrogel fibers at good percentages of survival. IPC hydrogel technology may be a useful tool for encapsulating neural and other cells on electrospun fiber scaffolds.

Entities:  

Keywords:  Interfacial polyelectrolyte complexation; electrospinning; hydrogel; neurite; neuron

Mesh:

Substances:

Year:  2018        PMID: 29862935      PMCID: PMC7446748          DOI: 10.1080/09205063.2018.1479084

Source DB:  PubMed          Journal:  J Biomater Sci Polym Ed        ISSN: 0920-5063            Impact factor:   3.517


  40 in total

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Journal:  ACS Nano       Date:  2010-12-28       Impact factor: 15.881

2.  Patterned prevascularised tissue constructs by assembly of polyelectrolyte hydrogel fibres.

Authors:  Meng Fatt Leong; Jerry K C Toh; Chan Du; Karthikeyan Narayanan; Hong Fang Lu; Tze Chiun Lim; Andrew C A Wan; Jackie Y Ying
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3.  Hydrogel for cell housing in the brain and in the spinal cord.

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4.  Synthesis and characterization of a novel double cross-linked hydrogel based on Diels-Alder click reaction and coordination bonding.

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Journal:  Mater Sci Eng C Mater Biol Appl       Date:  2017-08-12       Impact factor: 7.328

5.  Micrometer resolution silane-based patterning of hippocampal neurons: critical variables in photoresist and laser ablation processes for substrate fabrication.

Authors:  J M Corey; B C Wheeler; G J Brewer
Journal:  IEEE Trans Biomed Eng       Date:  1996-09       Impact factor: 4.538

6.  Alignment and composition of laminin-polycaprolactone nanofiber blends enhance peripheral nerve regeneration.

Authors:  Rebekah A Neal; Sunil S Tholpady; Patricia L Foley; Nathan Swami; Roy C Ogle; Edward A Botchwey
Journal:  J Biomed Mater Res A       Date:  2011-11-21       Impact factor: 4.396

7.  Ultrasoft Alginate Hydrogels Support Long-Term Three-Dimensional Functional Neuronal Networks.

Authors:  Gemma Palazzolo; Nicolas Broguiere; Orlando Cenciarelli; Harald Dermutz; Marcy Zenobi-Wong
Journal:  Tissue Eng Part A       Date:  2015-05-29       Impact factor: 3.845

8.  The culture of primary motor and sensory neurons in defined media on electrospun poly-L-lactide nanofiber scaffolds.

Authors:  Michelle K Leach; Zhang-Qi Feng; Caitlyn C Gertz; Samuel J Tuck; Tara M Regan; Youssef Naim; Andrea M Vincent; Joseph M Corey
Journal:  J Vis Exp       Date:  2011-02-15       Impact factor: 1.355

9.  Tissue-engineered regeneration of completely transected spinal cord using induced neural stem cells and gelatin-electrospun poly (lactide-co-glycolide)/polyethylene glycol scaffolds.

Authors:  Chang Liu; Yong Huang; Mao Pang; Yang Yang; Shangfu Li; Linshan Liu; Tao Shu; Wei Zhou; Xuan Wang; Limin Rong; Bin Liu
Journal:  PLoS One       Date:  2015-03-24       Impact factor: 3.240

10.  ImageJ2: ImageJ for the next generation of scientific image data.

Authors:  Curtis T Rueden; Johannes Schindelin; Mark C Hiner; Barry E DeZonia; Alison E Walter; Ellen T Arena; Kevin W Eliceiri
Journal:  BMC Bioinformatics       Date:  2017-11-29       Impact factor: 3.169

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  2 in total

1.  Preparation of Polyvinylidene Fluoride-Gold Nanoparticles Electrospinning Nanofiber Membranes.

Authors:  Xuemei Ge; Shang Wu; Wen Shen; Lijuan Chen; Yan Zheng; Fen Ao; Yuanlan Ning; Yueyang Mao; Zhong Chen
Journal:  Bioengineering (Basel)       Date:  2022-03-24

Review 2.  3D Electrospun Nanofiber-Based Scaffolds: From Preparations and Properties to Tissue Regeneration Applications.

Authors:  Shanshan Han; Kexin Nie; Jingchao Li; Qingqing Sun; Xiaofeng Wang; Xiaomeng Li; Qian Li
Journal:  Stem Cells Int       Date:  2021-06-17       Impact factor: 5.443

  2 in total

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