Injectable Hydrogel Guides Neurons Growth with Specific Directionality

Author:

Tseng Yun-Hsiu1,Ma Tien-Li1ORCID,Tan Dun-Heng1,Su An-Jey A.2,Washington Kia M.2,Wang Chun-Chieh3,Huang Yu-Ching4ORCID,Wu Ming-Chung567ORCID,Su Wei-Fang14ORCID

Affiliation:

1. Department of Materials Science and Engineering, National Taiwan University, Taipei 10617, Taiwan

2. Department of Surgery, University of Colorado Anschutz Medical Campus, Aurora, CO 80045, USA

3. National Synchrotron Radiation Research Center, Hsinchu 30076, Taiwan

4. Department of Materials Engineering, Ming Chi University of Technology, New Taipei 24301, Taiwan

5. Department of Chemical and Materials Engineering, Chang Gung University, Taoyuan 33302, Taiwan

6. Center for Green Technology, Chang Gung University, Taoyuan 33302, Taiwan

7. Division of Neonatology, Department of Pediatrics, Chang Gung Memorial Hospital at Linkou, Taoyuan 33305, Taiwan

Abstract

Visual disabilities affect more than 250 million people, with 43 million suffering from irreversible blindness. The eyes are an extension of the central nervous system which cannot regenerate. Neural tissue engineering is a potential method to cure the disease. Injectability is a desirable property for tissue engineering scaffolds which can eliminate some surgical procedures and reduce possible complications and health risks. We report the development of the anisotropic structured hydrogel scaffold created by a co-injection of cellulose nanofiber (CNF) solution and co-polypeptide solution. The positively charged poly (L-lysine)-r-poly(L-glutamic acid) with 20 mol% of glutamic acid (PLLGA) is crosslinked with negatively charged CNF while promoting cellular activity from the acid nerve stimulate. We found that CNF easily aligns under shear forces from injection and is able to form hydrogel with an ordered structure. Hydrogel is mechanically strong and able to support, guide, and stimulate neurite growth. The anisotropy of our hydrogel was quantitatively determined in situ by 2D optical microscopy and 3D X-ray tomography. The effects of PLLGA:CNF blend ratios on cell viability, neurite growth, and neuronal signaling are systematically investigated in this study. We determined the optimal blend composition for stimulating directional neurite growth yielded a 16% increase in length compared with control, reaching anisotropy of 30.30% at 10°/57.58% at 30°. Using measurements of calcium signaling in vitro, we found a 2.45-fold increase vs. control. Based on our results, we conclude this novel material and unique injection method has a high potential for application in neural tissue engineering.

Funder

National Science and Technology Council, Taiwan

Department of Defense of USA

University of Colorado Anschutz Medical Campus, USA

Chang Gung University

Chang Gung Memorial Hospital

Publisher

MDPI AG

Subject

Inorganic Chemistry,Organic Chemistry,Physical and Theoretical Chemistry,Computer Science Applications,Spectroscopy,Molecular Biology,General Medicine,Catalysis

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