Motor recovery and anatomical evidence of axonal regrowth in spinal cord-repaired adult rats.
about
Recovery after brain injury: mechanisms and principlesAxon regeneration and exercise-dependent plasticity after spinal cord injuryEffects of bone marrow stromal cell transplantation through CSF on the subacute and chronic spinal cord injury in rats.Functional recovery of stepping in rats after a complete neonatal spinal cord transection is not due to regrowth across the lesion site.Expression of suppressor of cytokine signaling-3 (SOCS3) and its role in neuronal death after complete spinal cord injuryImprovement of gait patterns in step-trained, complete spinal cord-transected rats treated with a peripheral nerve graft and acidic fibroblast growth factorThe effect of minocycline on the masticatory movements following the inferior alveolar nerve transection in freely moving rats.Bench to bedside of neural stem cell in traumatic brain injury.Plasticity of functional connectivity in the adult spinal cord.Cellular and paracellular transplants for spinal cord injury: a review of the literature.Potassium channels as a potential therapeutic target for trigeminal neuropathic and inflammatory pain.Alternatively activated macrophages in spinal cord injury and remission: another mechanism for repair?Alteration of primary afferent activity following inferior alveolar nerve transection in rats.Contrasting neuropathology and functional recovery after spinal cord injury in developing and adult rats.Re-growth of catecholaminergic fibers and protection of cholinergic spinal cord neurons in spinal repaired rats.Adeno-associated virus-mediated human acidic fibroblast growth factor expression promotes functional recovery of spinal cord-contused rats.Corticospinal regeneration into lumbar grey matter correlates with locomotor recovery after complete spinal cord transection and repair with peripheral nerve grafts, fibroblast growth factor 1, fibrin glue, and spinal fusion.Repair of spinal cord transection and its effects on muscle mass and myosin heavy chain isoform phenotype.Transplantation of porous tubes following spinal cord transection improves hindlimb function in the rat.Regulation of chondroitin sulphate proteoglycan and reactive gliosis after spinal cord transection: effects of peripheral nerve graft and fibroblast growth factor 1.Local inhibition of matrix metalloproteinases reduced M2 macrophage activity and impeded recovery in spinal cord transected rats after treatment with fibroblast growth factor-1 and nerve grafts
P2860
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P2860
Motor recovery and anatomical evidence of axonal regrowth in spinal cord-repaired adult rats.
description
2004 nî lūn-bûn
@nan
2004年の論文
@ja
2004年学术文章
@wuu
2004年学术文章
@zh
2004年学术文章
@zh-cn
2004年学术文章
@zh-hans
2004年学术文章
@zh-my
2004年学术文章
@zh-sg
2004年學術文章
@yue
2004年學術文章
@zh-hant
name
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@en
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@nl
type
label
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@en
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@nl
prefLabel
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@en
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@nl
P2093
P2860
P356
P1476
Motor recovery and anatomical ...... inal cord-repaired adult rats.
@en
P2093
Ching-Yi Lin
Richard T Robertson
Vernon W Lin
Yu-Shang Lee
P2860
P304
P356
10.1093/JNEN/63.3.223-A
P577
2004-03-01T00:00:00Z