Literature DB >> 26343846

Drug delivery, cell-based therapies, and tissue engineering approaches for spinal cord injury.

Shushi Kabu1, Yue Gao1, Brian K Kwon2, Vinod Labhasetwar3.   

Abstract

Spinal cord injury (SCI) results in devastating neurological and pathological consequences, causing major dysfunction to the motor, sensory, and autonomic systems. The primary traumatic injury to the spinal cord triggers a cascade of acute and chronic degenerative events, leading to further secondary injury. Many therapeutic strategies have been developed to potentially intervene in these progressive neurodegenerative events and minimize secondary damage to the spinal cord. Additionally, significant efforts have been directed toward regenerative therapies that may facilitate neuronal repair and establish connectivity across the injury site. Despite the promise that these approaches have shown in preclinical animal models of SCI, challenges with respect to successful clinical translation still remain. The factors that could have contributed to failure include important biologic and physiologic differences between the preclinical models and the human condition, study designs that do not mirror clinical reality, discrepancies in dosing and the timing of therapeutic interventions, and dose-limiting toxicity. With a better understanding of the pathobiology of events following acute SCI, developing integrated approaches aimed at preventing secondary damage and also facilitating neuroregenerative recovery is possible and hopefully will lead to effective treatments for this devastating injury. The focus of this review is to highlight the progress that has been made in drug therapies and delivery systems, and also cell-based and tissue engineering approaches for SCI.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  CNS injury; Drug therapy; Gene therapy; Growth factors; Inflammation; Polymers; Scaffold

Mesh:

Year:  2015        PMID: 26343846      PMCID: PMC4656085          DOI: 10.1016/j.jconrel.2015.08.060

Source DB:  PubMed          Journal:  J Control Release        ISSN: 0168-3659            Impact factor:   9.776


  191 in total

1.  Impaired mitochondrial function, oxidative stress and altered antioxidant enzyme activities following traumatic spinal cord injury.

Authors:  R D Azbill; X Mu; A J Bruce-Keller; M P Mattson; J E Springer
Journal:  Brain Res       Date:  1997-08-15       Impact factor: 3.252

Review 2.  Transplantation of stem cell-derived astrocytes for the treatment of amyotrophic lateral sclerosis and spinal cord injury.

Authors:  Charles Nicaise; Dinko Mitrecic; Aditi Falnikar; Angelo C Lepore
Journal:  World J Stem Cells       Date:  2015-03-26       Impact factor: 5.326

3.  Comparison of dynamic behavior and maturation of neural multipotent cells derived from different spinal cord developmental stages: an in vitro study.

Authors:  Lucia Slovinska; Eva Szekiova; Juraj Blasko; Stéphanie Devaux; Michel Salzet; Dasa Cizkova
Journal:  Acta Neurobiol Exp (Wars)       Date:  2015       Impact factor: 1.579

Review 4.  Cell and biomolecule delivery for tissue repair and regeneration in the central nervous system.

Authors:  Irja Elliott Donaghue; Roger Tam; Michael V Sefton; Molly S Shoichet
Journal:  J Control Release       Date:  2014-05-27       Impact factor: 9.776

5.  Transplantation of autologous olfactory ensheathing cells in complete human spinal cord injury.

Authors:  Pawel Tabakow; Wlodzimierz Jarmundowicz; Bogdan Czapiga; Wojciech Fortuna; Ryszard Miedzybrodzki; Marcin Czyz; Juliusz Huber; Dariusz Szarek; Stefan Okurowski; Pawel Szewczyk; Andrzej Gorski; Geoffrey Raisman
Journal:  Cell Transplant       Date:  2013       Impact factor: 4.064

6.  Affinity-based release of chondroitinase ABC from a modified methylcellulose hydrogel.

Authors:  Malgosia M Pakulska; Katarina Vulic; Molly S Shoichet
Journal:  J Control Release       Date:  2013-07-02       Impact factor: 9.776

7.  Superoxide dismutase activity and the effects of NBQX and CPP on lipid peroxidation in experimental spinal cord injury.

Authors:  A Görgülü; T Kiriş; F Unal; U Turkoğlu; M Küçük; S Cobanoğlu
Journal:  Res Exp Med (Berl)       Date:  2000-04

8.  Neuroprotective role of hydralazine in rat spinal cord injury-attenuation of acrolein-mediated damage.

Authors:  Jonghyuck Park; Lingxing Zheng; Andrew Marquis; Michael Walls; Brad Duerstock; Amber Pond; Sasha Vega-Alvarez; He Wang; Zheng Ouyang; Riyi Shi
Journal:  J Neurochem       Date:  2013-12-15       Impact factor: 5.372

9.  Secondary pathology following contusion, dislocation, and distraction spinal cord injuries.

Authors:  Anthony M Choo; Jie Liu; Marcel Dvorak; Wolfram Tetzlaff; Thomas R Oxland
Journal:  Exp Neurol       Date:  2008-05-14       Impact factor: 5.330

10.  Effect of melatonin on the functional recovery from experimental traumatic compression of the spinal cord.

Authors:  A Schiaveto-de-Souza; C A da-Silva; H L A Defino; E A Del Bel
Journal:  Braz J Med Biol Res       Date:  2013-04-12       Impact factor: 2.590

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  47 in total

1.  Three-Dimensional Hyaluronic Acid Hydrogel-Based Models for In Vitro Human iPSC-Derived NPC Culture and Differentiation.

Authors:  Shaohua Wu; Ranjie Xu; Bin Duan; Peng Jiang
Journal:  J Mater Chem B       Date:  2017-04-19       Impact factor: 6.331

2.  Evaluating accessibility of intravenously administered nanoparticles at the lesion site in rat and pig contusion models of spinal cord injury.

Authors:  Yue Gao; Sivakumar Vijayaraghavalu; Melinda Stees; Brian K Kwon; Vinod Labhasetwar
Journal:  J Control Release       Date:  2019-03-28       Impact factor: 9.776

Review 3.  Recent advances in nanotherapeutic strategies for spinal cord injury repair.

Authors:  Young Hye Song; Nikunj K Agrawal; Jonathan M Griffin; Christine E Schmidt
Journal:  Adv Drug Deliv Rev       Date:  2018-12-22       Impact factor: 15.470

4.  Epac2 Elevation Reverses Inhibition by Chondroitin Sulfate Proteoglycans In Vitro and Transforms Postlesion Inhibitory Environment to Promote Axonal Outgrowth in an Ex Vivo Model of Spinal Cord Injury.

Authors:  Alba Guijarro-Belmar; Mindaugas Viskontas; Yuting Wei; Xuenong Bo; Derryck Shewan; Wenlong Huang
Journal:  J Neurosci       Date:  2019-08-13       Impact factor: 6.167

5.  Directional axonal regrowth induced by an aligned fibrin nanofiber hydrogel contributes to improved motor function recovery in canine L2 spinal cord injury.

Authors:  Zheng Cao; Shenglian Yao; Yuhui Xiong; Zhenxia Zhang; Yongdong Yang; Feng He; He Zhao; Yi Guo; Guihuai Wang; Sheng Xie; Hua Guo; Xiumei Wang
Journal:  J Mater Sci Mater Med       Date:  2020-04-21       Impact factor: 3.896

Review 6.  Stem cells for spinal cord injury: Strategies to inform differentiation and transplantation.

Authors:  Nisha R Iyer; Thomas S Wilems; Shelly E Sakiyama-Elbert
Journal:  Biotechnol Bioeng       Date:  2016-09-21       Impact factor: 4.530

7.  Rolipram-Loaded Polymeric Micelle Nanoparticle Reduces Secondary Injury after Rat Compression Spinal Cord Injury.

Authors:  Christian Macks; So-Jung Gwak; Michael Lynn; Jeoung Soo Lee
Journal:  J Neurotrauma       Date:  2018-01-03       Impact factor: 5.269

8.  Superoxide Dismutase-Loaded Porous Polymersomes as Highly Efficient Antioxidants for Treating Neuropathic Pain.

Authors:  Sonia Kartha; Lesan Yan; Christine L Weisshaar; Meagan E Ita; Vladimir V Shuvaev; Vladimir R Muzykantov; Andrew Tsourkas; Beth A Winkelstein; Zhiliang Cheng
Journal:  Adv Healthc Mater       Date:  2017-07-03       Impact factor: 9.933

Review 9.  Promising Role of Nano-Encapsulated Drugs for Spinal Cord Injury.

Authors:  Tasneem Ismail Khan; S Hemalatha; Mohammad Waseem
Journal:  Mol Neurobiol       Date:  2020-01-03       Impact factor: 5.590

10.  A scoping review of trials for cell-based therapies in human spinal cord injury.

Authors:  Alice G Willison; Sam Smith; Benjamin M Davies; Mark R N Kotter; Susan C Barnett
Journal:  Spinal Cord       Date:  2020-04-06       Impact factor: 2.772

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