Literature DB >> 21636129

Robust CNS regeneration after complete spinal cord transection using aligned poly-L-lactic acid microfibers.

Andres Hurtado1, Jared M Cregg, Han B Wang, Dane F Wendell, Martin Oudega, Ryan J Gilbert, John W McDonald.   

Abstract

Following spinal cord injury, axons fail to regenerate without exogenous intervention. In this study we report that aligned microfiber-based grafts foster robust regeneration of vascularized CNS tissue. Film, random, and aligned microfiber-based conduits were grafted into a 3 mm thoracic rat spinal cord gap created by complete transection. Over the course of 4 weeks, microtopography presented by aligned or random poly-L-lactic acid microfibers facilitated infiltration of host tissue, and the initial 3 mm gap was closed by endogenous cell populations. This bulk tissue response was composed of regenerating axons accompanied by morphologically aligned astrocytes. Aligned fibers promoted long distance (2055 ± 150 μm), rostrocaudal axonal regeneration, significantly greater than random fiber (1162 ± 87 μm) and film (413 ± 199 μm) controls. Retrograde tracing indicated that regenerating axons originated from propriospinal neurons of the rostral spinal cord, and supraspinal neurons of the reticular formation, red nucleus, raphe and vestibular nuclei. Our findings outline a form of regeneration within the central nervous system that holds important implications for regeneration biology.
Copyright © 2011 Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21636129      PMCID: PMC4163047          DOI: 10.1016/j.biomaterials.2011.05.006

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  48 in total

1.  Microtubule stabilization reduces scarring and causes axon regeneration after spinal cord injury.

Authors:  Farida Hellal; Andres Hurtado; Jörg Ruschel; Kevin C Flynn; Claudia J Laskowski; Martina Umlauf; Lukas C Kapitein; Dinara Strikis; Vance Lemmon; John Bixby; Casper C Hoogenraad; Frank Bradke
Journal:  Science       Date:  2011-01-27       Impact factor: 47.728

2.  Regeneration of sensory axons within the injured spinal cord induced by intraganglionic cAMP elevation.

Authors:  Simona Neumann; Frank Bradke; Marc Tessier-Lavigne; Allan I Basbaum
Journal:  Neuron       Date:  2002-06-13       Impact factor: 17.173

3.  The injured spinal cord: imaging, histopathologic clinical correlates, and basic science approaches to enhancing neural function after spinal cord injury.

Authors:  R M Quencer; R P Bunge
Journal:  Spine (Phila Pa 1976)       Date:  1996-09-15       Impact factor: 3.468

4.  Combining an autologous peripheral nervous system "bridge" and matrix modification by chondroitinase allows robust, functional regeneration beyond a hemisection lesion of the adult rat spinal cord.

Authors:  John D Houle; Veronica J Tom; Debra Mayes; Gail Wagoner; Napoleon Phillips; Jerry Silver
Journal:  J Neurosci       Date:  2006-07-12       Impact factor: 6.167

5.  Axonal regeneration into Schwann cell-seeded guidance channels grafted into transected adult rat spinal cord.

Authors:  X M Xu; V Guénard; N Kleitman; M B Bunge
Journal:  J Comp Neurol       Date:  1995-01-02       Impact factor: 3.215

6.  Axons from CNS neurons regenerate into PNS grafts.

Authors:  P M Richardson; U M McGuinness; A J Aguayo
Journal:  Nature       Date:  1980-03-20       Impact factor: 49.962

7.  Bridging grafts and transient nerve growth factor infusions promote long-term central nervous system neuronal rescue and partial functional recovery.

Authors:  M H Tuszynski; F H Gage
Journal:  Proc Natl Acad Sci U S A       Date:  1995-05-09       Impact factor: 11.205

8.  Thin-film enhanced nerve guidance channels for peripheral nerve repair.

Authors:  Isaac P Clements; Young-tae Kim; Arthur W English; Xi Lu; Andy Chung; Ravi V Bellamkonda
Journal:  Biomaterials       Date:  2009-05-15       Impact factor: 12.479

9.  PTPsigma is a receptor for chondroitin sulfate proteoglycan, an inhibitor of neural regeneration.

Authors:  Yingjie Shen; Alan P Tenney; Sarah A Busch; Kevin P Horn; Fernando X Cuascut; Kai Liu; Zhigang He; Jerry Silver; John G Flanagan
Journal:  Science       Date:  2009-10-15       Impact factor: 47.728

10.  Neurite outgrowth on nanofiber scaffolds with different orders, structures, and surface properties.

Authors:  Jingwei Xie; Matthew R MacEwan; Xiaoran Li; Shelly E Sakiyama-Elbert; Younan Xia
Journal:  ACS Nano       Date:  2009-05-26       Impact factor: 15.881

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  70 in total

Review 1.  Biomaterial Approaches to Modulate Reactive Astroglial Response.

Authors:  Jonathan M Zuidema; Ryan J Gilbert; Manoj K Gottipati
Journal:  Cells Tissues Organs       Date:  2018-12-05       Impact factor: 2.481

2.  Injectable, Magnetically Orienting Electrospun Fiber Conduits for Neuron Guidance.

Authors:  Christopher D L Johnson; Debmalya Ganguly; Jonathan M Zuidema; Thomas J Cardinal; Alexis M Ziemba; Kathryn R Kearns; Simon M McCarthy; Deanna M Thompson; Ganpati Ramanath; Diana A Borca-Tasciuc; Silvio Dutz; Ryan J Gilbert
Journal:  ACS Appl Mater Interfaces       Date:  2018-12-19       Impact factor: 9.229

3.  Cauda equina-derived extracellular matrix for fabrication of nanostructured hybrid scaffolds applied to neural tissue engineering.

Authors:  Xiaoxiao Wen; Yu Wang; Zhiyuan Guo; Haoye Meng; Jingxiang Huang; Li Zhang; Bin Zhao; Qing Zhao; Yudong Zheng; Jiang Peng
Journal:  Tissue Eng Part A       Date:  2014-12-16       Impact factor: 3.845

Review 4.  Challenges of gene delivery to the central nervous system and the growing use of biomaterial vectors.

Authors:  Devan L Puhl; Anthony R D'Amato; Ryan J Gilbert
Journal:  Brain Res Bull       Date:  2019-06-05       Impact factor: 4.077

5.  Electrospinning and Electrospun Nanofibers: Methods, Materials, and Applications.

Authors:  Jiajia Xue; Tong Wu; Yunqian Dai; Younan Xia
Journal:  Chem Rev       Date:  2019-03-27       Impact factor: 60.622

6.  Coating Topologically Complex Electrospun Fibers with Nanothin Silk Fibroin Enhances Neurite Outgrowth in Vitro.

Authors:  Alexis M Ziemba; Tanner D Fink; Mary Clare Crochiere; Devan L Puhl; Samichya Sapkota; Ryan J Gilbert; R Helen Zha
Journal:  ACS Biomater Sci Eng       Date:  2020-02-17

Review 7.  Harnessing stem cells and biomaterials to promote neural repair.

Authors:  K F Bruggeman; N Moriarty; E Dowd; D R Nisbet; C L Parish
Journal:  Br J Pharmacol       Date:  2018-12-21       Impact factor: 8.739

8.  Photopolymerized microfeatures for directed spiral ganglion neurite and Schwann cell growth.

Authors:  Bradley W Tuft; Shufeng Li; Linjing Xu; Joseph C Clarke; Scott P White; Bradley A Guymon; Krystian X Perez; Marlan R Hansen; C Allan Guymon
Journal:  Biomaterials       Date:  2012-10-13       Impact factor: 12.479

Review 9.  Electrospun Fibers for Spinal Cord Injury Research and Regeneration.

Authors:  Nicholas J Schaub; Christopher D Johnson; Blair Cooper; Ryan J Gilbert
Journal:  J Neurotrauma       Date:  2016-03-30       Impact factor: 5.269

10.  Controlled activity of mouse astrocytes on electrospun PCL nanofiber containing polysaccharides from brown seaweed.

Authors:  Sang-Myung Jung; Sung Hoon Kim; Seul Ki Min; Hwa Sung Shin
Journal:  In Vitro Cell Dev Biol Anim       Date:  2012-11-13       Impact factor: 2.416

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