Literature DB >> 26134079

Biomaterial bridges enable regeneration and re-entry of corticospinal tract axons into the caudal spinal cord after SCI: Association with recovery of forelimb function.

Kiran Pawar1, Brian J Cummings2, Aline Thomas3, Lonnie D Shea3, Ariel Levine4, Sam Pfaff4, Aileen J Anderson5.   

Abstract

Severed axon tracts fail to exhibit robust or spontaneous regeneration after spinal cord injury (SCI). Regeneration failure reflects a combination of factors, including the growth state of neuronal cell bodies and the regeneration-inhibitory environment of the central nervous system. However, while spared circuitry can be retrained, target reinnervation depends on longitudinally directed regeneration of transected axons. This study describes a biodegradable implant using poly(lactide-co-glycolide) (PLG) bridges as a carrier scaffold to support regeneration after injury. In order to detect regeneration of descending neuronal tracts into the bridge, and beyond into intact caudal parenchyma, we developed a mouse cervical implantation model and employed Crym:GFP transgenic mice. Characterization of Crym:GFP mice revealed that descending tracts, including the corticospinal tract, were labeled by green fluorescent protein (GFP), while ascending sensory neurons and fibers were not. Robust co-localization between GFP and neurofilament-200 (NF-200) as well as GFP and GAP-43 was observed at both the rostral and caudal bridge/tissue interface. No evidence of similar regeneration was observed in mice that received gelfoam at the lesion site as controls. Minimal co-localization between GFP reporter labeling and macrophage markers was observed. Taken together, these data suggest that axons originating from descending fiber tracts regenerated, entered into the PLG bridge at the rostral margin, continued through the bridge site, and exited to re-enter host tissue at the caudal edge of the intact bridge. Finally, regeneration through implanted bridges was associated with a reduction in ipsilateral forelimb errors on a horizontal ladder task. Published by Elsevier Ltd.

Entities:  

Keywords:  Bridge; Cylinder reaching; Growth associated protein 43 (GAP-43); Ladder beam; Macrophage; Nerve guide; Poly(lactide-co-glycolide) (PLG); Regeneration; Spinal cord injury

Mesh:

Substances:

Year:  2015        PMID: 26134079      PMCID: PMC4523232          DOI: 10.1016/j.biomaterials.2015.05.032

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


  74 in total

1.  An aligned 3D neuronal-glial co-culture model for peripheral nerve studies.

Authors:  Muhammad F B Daud; Kiran C Pawar; Frederik Claeyssens; Anthony J Ryan; John W Haycock
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2.  Long-distance growth and connectivity of neural stem cells after severe spinal cord injury.

Authors:  Paul Lu; Yaozhi Wang; Lori Graham; Karla McHale; Mingyong Gao; Di Wu; John Brock; Armin Blesch; Ephron S Rosenzweig; Leif A Havton; Binhai Zheng; James M Conner; Martin Marsala; Mark H Tuszynski
Journal:  Cell       Date:  2012-09-14       Impact factor: 41.582

Review 3.  Defeating inhibition of regeneration by scar and myelin components.

Authors:  James W Fawcett; Martin E Schwab; Laura Montani; Nicole Brazda; Hans Werner Müller
Journal:  Handb Clin Neurol       Date:  2012

4.  Military penetrating spine injuries compared with blunt.

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Journal:  Spine J       Date:  2011-11-18       Impact factor: 4.166

Review 5.  Concepts and methods for the study of axonal regeneration in the CNS.

Authors:  Mark H Tuszynski; Oswald Steward
Journal:  Neuron       Date:  2012-06-07       Impact factor: 17.173

Review 6.  Realizing the maximum potential of Schwann cells to promote recovery from spinal cord injury.

Authors:  Mary Bartlett Bunge; Patrick McGhee Wood
Journal:  Handb Clin Neurol       Date:  2012

Review 7.  Corticospinal reorganization after spinal cord injury.

Authors:  Martin Oudega; Monica A Perez
Journal:  J Physiol       Date:  2012-05-14       Impact factor: 5.182

Review 8.  Biodegradable biomatrices and bridging the injured spinal cord: the corticospinal tract as a proof of principle.

Authors:  Elbert A J Joosten
Journal:  Cell Tissue Res       Date:  2012-03-14       Impact factor: 5.249

9.  Chondroitinase ABC promotes compensatory sprouting of the intact corticospinal tract and recovery of forelimb function following unilateral pyramidotomy in adult mice.

Authors:  Michelle L Starkey; Katalin Bartus; Andrew W Barritt; Elizabeth J Bradbury
Journal:  Eur J Neurosci       Date:  2012-10-14       Impact factor: 3.386

10.  Degeneration of the injured cervical cord is associated with remote changes in corticospinal tract integrity and upper limb impairment.

Authors:  Patrick Freund; Torben Schneider; Zoltan Nagy; Chloe Hutton; Nikolaus Weiskopf; Karl Friston; Claudia A Wheeler-Kingshott; Alan J Thompson
Journal:  PLoS One       Date:  2012-12-12       Impact factor: 3.240

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  23 in total

1.  3D Printed Stem-Cell Derived Neural Progenitors Generate Spinal Cord Scaffolds.

Authors:  Daeha Joung; Vincent Truong; Colin C Neitzke; Shuang-Zhuang Guo; Patrick J Walsh; Joseph R Monat; Fanben Meng; Sung Hyun Park; James R Dutton; Ann M Parr; Michael C McAlpine
Journal:  Adv Funct Mater       Date:  2018-08-09       Impact factor: 18.808

2.  Spinal Progenitor-Laden Bridges Support Earlier Axon Regeneration Following Spinal Cord Injury.

Authors:  Courtney M Dumont; Mary K Munsell; Mitchell A Carlson; Brian J Cummings; Aileen J Anderson; Lonnie D Shea
Journal:  Tissue Eng Part A       Date:  2018-10-19       Impact factor: 3.845

3.  Polycistronic Delivery of IL-10 and NT-3 Promotes Oligodendrocyte Myelination and Functional Recovery in a Mouse Spinal Cord Injury Model.

Authors:  Dominique R Smith; Courtney M Dumont; Jonghyuck Park; Andrew J Ciciriello; Amina Guo; Ravindra Tatineni; Brian J Cummings; Aileen J Anderson; Lonnie D Shea
Journal:  Tissue Eng Part A       Date:  2020-02-25       Impact factor: 3.845

4.  Intravascular innate immune cells reprogrammed via intravenous nanoparticles to promote functional recovery after spinal cord injury.

Authors:  Jonghyuck Park; Yining Zhang; Eiji Saito; Steve J Gurczynski; Bethany B Moore; Brian J Cummings; Aileen J Anderson; Lonnie D Shea
Journal:  Proc Natl Acad Sci U S A       Date:  2019-07-08       Impact factor: 11.205

5.  Hierarchically Ordered Porous and High-Volume Polycaprolactone Microchannel Scaffolds Enhanced Axon Growth in Transected Spinal Cords.

Authors:  Dena Shahriari; Jacob Y Koffler; Mark H Tuszynski; Wendy M Campana; Jeff S Sakamoto
Journal:  Tissue Eng Part A       Date:  2017-03-31       Impact factor: 3.845

Review 6.  Regenerative Therapies for Spinal Cord Injury.

Authors:  Nureddin Ashammakhi; Han-Jun Kim; Arshia Ehsanipour; Rebecca D Bierman; Outi Kaarela; Chengbin Xue; Ali Khademhosseini; Stephanie K Seidlits
Journal:  Tissue Eng Part B Rev       Date:  2019-10-23       Impact factor: 6.389

7.  Reducing inflammation through delivery of lentivirus encoding for anti-inflammatory cytokines attenuates neuropathic pain after spinal cord injury.

Authors:  Jonghyuck Park; Joseph T Decker; Dominique R Smith; Brian J Cummings; Aileen J Anderson; Lonnie D Shea
Journal:  J Control Release       Date:  2018-10-06       Impact factor: 9.776

8.  Combinatorial lentiviral gene delivery of pro-oligodendrogenic factors for improving myelination of regenerating axons after spinal cord injury.

Authors:  Dominique R Smith; Daniel J Margul; Courtney M Dumont; Mitchell A Carlson; Mary K Munsell; Mitchell Johnson; Brian J Cummings; Aileen J Anderson; Lonnie D Shea
Journal:  Biotechnol Bioeng       Date:  2018-10-27       Impact factor: 4.530

9.  Semi-automated counting of axon regeneration in poly(lactide co-glycolide) spinal cord bridges.

Authors:  Dylan A McCreedy; Daniel J Margul; Stephanie K Seidlits; Jennifer T Antane; Ryan J Thomas; Gillian M Sissman; Ryan M Boehler; Dominique R Smith; Sam W Goldsmith; Todor V Kukushliev; Jonathan B Lamano; Bansi H Vedia; Ting He; Lonnie D Shea
Journal:  J Neurosci Methods       Date:  2016-01-25       Impact factor: 2.390

Review 10.  Corticospinal Motor Circuit Plasticity After Spinal Cord Injury: Harnessing Neuroplasticity to Improve Functional Outcomes.

Authors:  Syed Faraz Kazim; Christian A Bowers; Chad D Cole; Samantha Varela; Zafar Karimov; Erick Martinez; Jonathan V Ogulnick; Meic H Schmidt
Journal:  Mol Neurobiol       Date:  2021-08-03       Impact factor: 5.590

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