Literature DB >> 30930306

Rapid 3D printing of functional nanoparticle-enhanced conduits for effective nerve repair.

Jie Tao1, Jiumeng Zhang2, Ting Du2, Xin Xu2, Xianming Deng3, Shaochen Chen4, Jinlu Liu2, Yuwen Chen2, Xuan Liu2, Meimei Xiong2, Yi Luo5, Hao Cheng2, Jian Mao6, Ludwig Cardon7, Maling Gou8, Yuquan Wei2.   

Abstract

Nerve conduits provide an advanced tool for repairing the injured peripheral nerve that often causes disability and mortality. Currently, the efficiency of conduits in repairing peripheral nerve is unsatisfying. Here, we show a functional nanoparticle-enhanced nerve conduit for promoting the regeneration of peripheral nerves. This conduit, which consists of gelatin-methacryloyl (GelMA) hydrogels with drug loaded poly(ethylene glycol)- poly(3-caprolactone) (MPEG-PCL) nanoparticles dispersed in the hydrogel matrix, is rapidly fabricated by a continuous three-dimensional (3D) printing process. While the 3D-printed hydrogel conduit with customized size, shape and structure provides a physical microenvironment for axonal elongation, the nanoparticles sustained release the drug to facilitate the nerve regeneration. The drug, 4-((5,10-dimethyl-6-oxo-6,10-dihydro-5H-pyrimido[5,4-b]thieno[3,2-e][1,4]diazepin-2-yl)amino) benzenesulfonamide, is a Hippo pathway inhibitor with multiple functions including improving the proliferation and migration of Schwann cells and up-regulating neurotrophic factors genes. The descried functional nerve conduit efficiently induced the recovery of sciatic injuries in morphology, histopathology and functions in vivo, showing the potential clinical application in peripheral nerve repair. STATEMENTS OF SIGNIFICANCE: Functional nerve conduit provides a promising strategy alternative to autografts. In this work, we rapidly customized a nanoparticle-enhanced conduit by the continuous bioprinting process. This nanoparticle in the conduit can release a Hippo pathway inhibitor to facilitate the nerve regeneration and function restoration. The efficacy of the conduits is comparable to that of autograft, suggesting the potential clinical applications.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D printing; Drug delivery; Hydrogel; Nanoparticles; Peripheral nerve regeneration

Mesh:

Substances:

Year:  2019        PMID: 30930306     DOI: 10.1016/j.actbio.2019.03.047

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  24 in total

Review 1.  Tissue Engineered Neurovascularization Strategies for Craniofacial Tissue Regeneration.

Authors:  Yiming Li; David Fraser; Jared Mereness; Amy Van Hove; Sayantani Basu; Maureen Newman; Danielle S W Benoit
Journal:  ACS Appl Bio Mater       Date:  2021-11-29

Review 2.  Nanoparticle-hydrogel superstructures for biomedical applications.

Authors:  Yao Jiang; Nishta Krishnan; Jiyoung Heo; Ronnie H Fang; Liangfang Zhang
Journal:  J Control Release       Date:  2020-05-26       Impact factor: 9.776

3.  Efficacy of Large Groove Texture on Rat Sciatic Nerve Regeneration In Vivo Using Polyacrylonitrile Nerve Conduits.

Authors:  Zonghuan Wang; Yibing Wu; Yang Xiang; Marie Beatrix Kruth; Peng Wei; Guangli Dai; Kedi Xu; Jun Yin; Yong Huang
Journal:  Ann Biomed Eng       Date:  2020-07-15       Impact factor: 3.934

4.  Expanding sacrificially printed microfluidic channel-embedded paper devices for construction of volumetric tissue models in vitro.

Authors:  Hongbin Li; Feng Cheng; Wanlu Li; Xia Cao; Zixuan Wang; Mian Wang; Juan Antonio Robledo-Lara; Junlong Liao; Carolina Chávez-Madero; Shabir Hassan; Jingwei Xie; Grissel Trujillo-de Santiago; Mario Moisés Álvarez; Jinmei He; Yu Shrike Zhang
Journal:  Biofabrication       Date:  2020-09-18       Impact factor: 9.954

5.  Nerve transfer with 3D-printed branch nerve conduits.

Authors:  Jing Zhang; Jie Tao; Hao Cheng; Haofan Liu; Wenbi Wu; Yinchu Dong; Xuesong Liu; Maling Gou; Siming Yang; Jianguo Xu
Journal:  Burns Trauma       Date:  2022-04-15

Review 6.  3D Bioprinting of Neural Tissues.

Authors:  Melissa Cadena; Liqun Ning; Alexia King; Boeun Hwang; Linqi Jin; Vahid Serpooshan; Steven A Sloan
Journal:  Adv Healthc Mater       Date:  2020-11-16       Impact factor: 11.092

Review 7.  Trends in 3D Printing Processes for Biomedical Field: Opportunities and Challenges.

Authors:  Alina Ghilan; Aurica P Chiriac; Loredana E Nita; Alina G Rusu; Iordana Neamtu; Vlad Mihai Chiriac
Journal:  J Polym Environ       Date:  2020-03-31       Impact factor: 3.667

8.  Differences in the Structure and Protein Expression of Femoral Nerve Branches in Rats.

Authors:  Shuai Wei; Qian Hu; Xiaoqing Cheng; Jianxiong Ma; Xuezhen Liang; Jiang Peng; Wenjing Xu; Xun Sun; Gonghai Han; Xinlong Ma; Yu Wang
Journal:  Front Neuroanat       Date:  2020-04-08       Impact factor: 3.856

9.  Noninvasive in vivo 3D bioprinting.

Authors:  Yuwen Chen; Jiumeng Zhang; Xuan Liu; Shuai Wang; Jie Tao; Yulan Huang; Wenbi Wu; Yang Li; Kai Zhou; Xiawei Wei; Shaochen Chen; Xiang Li; Xuewen Xu; Ludwig Cardon; Zhiyong Qian; Maling Gou
Journal:  Sci Adv       Date:  2020-06-05       Impact factor: 14.136

Review 10.  Tissue Engineering and Regenerative Medicine: Achievements, Future, and Sustainability in Asia.

Authors:  Fengxuan Han; Jiayuan Wang; Luguang Ding; Yuanbin Hu; Wenquan Li; Zhangqin Yuan; Qianping Guo; Caihong Zhu; Li Yu; Huan Wang; Zhongliang Zhao; Luanluan Jia; Jiaying Li; Yingkang Yu; Weidong Zhang; Genglei Chu; Song Chen; Bin Li
Journal:  Front Bioeng Biotechnol       Date:  2020-03-24
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