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Biomaterials and strategies for repairing spinal cord lesions

Authors
 Hun-Jin Jeong  ;  Yeomin Yun  ;  Seung-Jae Lee  ;  Yoon Ha  ;  So-Jung Gwak 
Citation
 NEUROCHEMISTRY INTERNATIONAL, Vol.144 : 104973, 2021-03 
Journal Title
NEUROCHEMISTRY INTERNATIONAL
ISSN
 0197-0186 
Issue Date
2021-03
MeSH
Animals ; Astrocytes / drug effects ; Astrocytes / metabolism ; Astrocytes / pathology ; Axons / drug effects ; Axons / metabolism ; Axons / pathology ; Biocompatible Materials / administration & dosage* ; Biocompatible Materials / metabolism ; Chitosan / administration & dosage ; Chitosan / metabolism ; Collagen / administration & dosage ; Collagen / metabolism ; Gliosis / drug therapy ; Gliosis / metabolism ; Gliosis / pathology ; Humans ; Hyaluronic Acid / administration & dosage ; Hyaluronic Acid / metabolism ; Nanostructures / administration & dosage* ; Nerve Regeneration / drug effects ; Nerve Regeneration / physiology* ; Spinal Cord Injuries / metabolism ; Spinal Cord Injuries / pathology ; Spinal Cord Injuries / therapy*
Keywords
Biomaterials ; Natural polymer ; Nerve regeneration ; Spinal cord injury ; Synthetic polymer
Abstract
Spinal cord injury (SCI) causes intractable disease and leads to inevitable physical, financial, and psychological burdens on patients and their families. SCI is commonly divided into primary and secondary injury. Primary injury occurs upon direct impact to the spinal cord, which leads to cell necrosis, axon disruption, and vascular loss. This triggers pathophysiological secondary injury, which has several phases: acute, subacute, intermediate, and chronic. These phases are dependent on post-injury time and pathophysiology and have various causes, such as the infiltration of inflammatory cells and release of cytokines that can act as a barrier to neural regeneration. Another unique feature of SCI is the glial scar produced from the reactive proliferation of astrocytes, which acts as a barrier to axonal regeneration. Interdisciplinary research is investigating the use of biomaterials and tissue-engineered fabrication to overcome SCI. In this review, we discuss representative biomaterials, including natural and synthetic polymers and nanomaterials. In addition, we describe several strategies to repair spinal cord injuries, such as fabrication and the delivery of therapeutic biocomponents. These biomaterials and strategies may offer beneficial information to enhance the repair of spinal cord lesions.
Full Text
https://www.sciencedirect.com/science/article/pii/S019701862100019X
DOI
10.1016/j.neuint.2021.104973
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Neurosurgery (신경외과학교실) > 1. Journal Papers
Yonsei Authors
Ha, Yoon(하윤)
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/190389
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