Literature DB >> 28167393

Biodegradable scaffolds promote tissue remodeling and functional improvement in non-human primates with acute spinal cord injury.

Jonathan R Slotkin1, Christopher D Pritchard2, Brian Luque3, Janice Ye3, Richard T Layer4, Mathew S Lawrence5, Timothy M O'Shea6, Roland R Roy7, Hui Zhong8, Isabel Vollenweider9, V Reggie Edgerton10, Grégoire Courtine9, Eric J Woodard11, Robert Langer12.   

Abstract

Tissue loss significantly reduces the potential for functional recovery after spinal cord injury. We previously showed that implantation of porous scaffolds composed of a biodegradable and biocompatible block copolymer of Poly-lactic-co-glycolic acid and Poly-l-lysine improves functional recovery and reduces spinal cord tissue injury after spinal cord hemisection injury in rats. Here, we evaluated the safety and efficacy of porous scaffolds in non-human Old-World primates (Chlorocebus sabaeus) after a partial and complete lateral hemisection of the thoracic spinal cord. Detailed analyses of kinematics and muscle activity revealed that by twelve weeks after injury fully hemisected monkeys implanted with scaffolds exhibited significantly improved recovery of locomotion compared to non-implanted control animals. Twelve weeks after injury, histological analysis demonstrated that the spinal cords of monkeys with a hemisection injury implanted with scaffolds underwent appositional healing characterized by a significant increase in remodeled tissue in the region of the hemisection compared to non-implanted controls. The number of glial fibrillary acidic protein immunopositive astrocytes was diminished within the inner regions of the remodeled tissue layer in treated animals. Activated macrophage and microglia were present diffusely throughout the remodeled tissue and concentrated at the interface between the preserved spinal cord tissue and the remodeled tissue layer. Numerous unphosphorylated neurofilament H and neuronal growth associated protein positive fibers and myelin basic protein positive cells may indicate neural sprouting inside the remodeled tissue layer of treated monkeys. These results support the safety and efficacy of polymer scaffolds in a primate model of acute spinal cord injury. A device substantially similar to the device described here is the subject of an ongoing human clinical trial.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Functional improvement; Polymeric scaffolds; Primates; Spinal cord injury; Tissue engineering; Tissue remodeling

Mesh:

Year:  2017        PMID: 28167393     DOI: 10.1016/j.biomaterials.2017.01.024

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


  23 in total

Review 1.  Chasing the Paradigm: Clinical Translation of 25 Years of Tissue Engineering.

Authors:  Tyler Hoffman; Ali Khademhosseini; Robert Langer
Journal:  Tissue Eng Part A       Date:  2019-05       Impact factor: 3.845

2.  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 3.  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

4.  Long-term clinical observation of patients with acute and chronic complete spinal cord injury after transplantation of NeuroRegen scaffold.

Authors:  Fengwu Tang; Jiaguang Tang; Yannan Zhao; Jiaojiao Zhang; Zhifeng Xiao; Bing Chen; Guang Han; Na Yin; Xianfeng Jiang; Changyu Zhao; Shixiang Cheng; Ziqiang Wang; Yumei Chen; Qiaoling Chen; Keran Song; Zhiwei Zhang; Junjie Niu; Lingjun Wang; Qin Shi; Liang Chen; Huilin Yang; Shuxun Hou; Sai Zhang; Jianwu Dai
Journal:  Sci China Life Sci       Date:  2021-08-16       Impact factor: 6.038

Review 5.  Therapeutic targets and nanomaterial-based therapies for mitigation of secondary injury after spinal cord injury.

Authors:  Jun Gao; Minkyung Khang; Zhen Liao; Megan Detloff; Jeoung Soo Lee
Journal:  Nanomedicine (Lond)       Date:  2021-08-17       Impact factor: 6.096

Review 6.  Transneuronal tracing to map connectivity in injured and transplanted spinal networks.

Authors:  Tara A Fortino; Margo L Randelman; Adam A Hall; Jasbir Singh; David C Bloom; Esteban Engel; Daniel J Hoh; Shaoping Hou; Lyandysha V Zholudeva; Michael A Lane
Journal:  Exp Neurol       Date:  2022-01-25       Impact factor: 5.620

7.  Configuration of electrical spinal cord stimulation through real-time processing of gait kinematics.

Authors:  Marco Capogrosso; Fabien B Wagner; Jerome Gandar; Eduardo Martin Moraud; Nikolaus Wenger; Tomislav Milekovic; Polina Shkorbatova; Natalia Pavlova; Pavel Musienko; Erwan Bezard; Jocelyne Bloch; Grégoire Courtine
Journal:  Nat Protoc       Date:  2018-09       Impact factor: 13.491

8.  Future biomaterials for enhanced cell-substrate communication in spinal cord injury intervention.

Authors:  Pradeep Kumar
Journal:  Future Sci OA       Date:  2017-11-15

Review 9.  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

Review 10.  Enhancing Plasticity of the Central Nervous System: Drugs, Stem Cell Therapy, and Neuro-Implants.

Authors:  Alice Le Friec; Anne-Sophie Salabert; Carole Davoust; Boris Demain; Christophe Vieu; Laurence Vaysse; Pierre Payoux; Isabelle Loubinoux
Journal:  Neural Plast       Date:  2017-12-17       Impact factor: 3.599

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