Cargando…

Injectable Hydrogel Guides Neurons Growth with Specific Directionality

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...

Descripción completa

Detalles Bibliográficos
Autores principales: Tseng, Yun-Hsiu, Ma, Tien-Li, Tan, Dun-Heng, Su, An-Jey A., Washington, Kia M., Wang, Chun-Chieh, Huang, Yu-Ching, Wu, Ming-Chung, Su, Wei-Fang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10178216/
https://www.ncbi.nlm.nih.gov/pubmed/37175657
http://dx.doi.org/10.3390/ijms24097952
_version_ 1785040808486895616
author Tseng, Yun-Hsiu
Ma, Tien-Li
Tan, Dun-Heng
Su, An-Jey A.
Washington, Kia M.
Wang, Chun-Chieh
Huang, Yu-Ching
Wu, Ming-Chung
Su, Wei-Fang
author_facet Tseng, Yun-Hsiu
Ma, Tien-Li
Tan, Dun-Heng
Su, An-Jey A.
Washington, Kia M.
Wang, Chun-Chieh
Huang, Yu-Ching
Wu, Ming-Chung
Su, Wei-Fang
author_sort Tseng, Yun-Hsiu
collection PubMed
description 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.
format Online
Article
Text
id pubmed-10178216
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-101782162023-05-13 Injectable Hydrogel Guides Neurons Growth with Specific Directionality Tseng, Yun-Hsiu Ma, Tien-Li Tan, Dun-Heng Su, An-Jey A. Washington, Kia M. Wang, Chun-Chieh Huang, Yu-Ching Wu, Ming-Chung Su, Wei-Fang Int J Mol Sci Article 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. MDPI 2023-04-27 /pmc/articles/PMC10178216/ /pubmed/37175657 http://dx.doi.org/10.3390/ijms24097952 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Tseng, Yun-Hsiu
Ma, Tien-Li
Tan, Dun-Heng
Su, An-Jey A.
Washington, Kia M.
Wang, Chun-Chieh
Huang, Yu-Ching
Wu, Ming-Chung
Su, Wei-Fang
Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title_full Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title_fullStr Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title_full_unstemmed Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title_short Injectable Hydrogel Guides Neurons Growth with Specific Directionality
title_sort injectable hydrogel guides neurons growth with specific directionality
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10178216/
https://www.ncbi.nlm.nih.gov/pubmed/37175657
http://dx.doi.org/10.3390/ijms24097952
work_keys_str_mv AT tsengyunhsiu injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT matienli injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT tandunheng injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT suanjeya injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT washingtonkiam injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT wangchunchieh injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT huangyuching injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT wumingchung injectablehydrogelguidesneuronsgrowthwithspecificdirectionality
AT suweifang injectablehydrogelguidesneuronsgrowthwithspecificdirectionality