Literature DB >> 8797175

Purkinje cell vulnerability to mild traumatic brain injury.

K Fukuda1, N Aihara, S M Sagar, F R Sharp, L H Pitts, J Honkaniemi, L J Noble.   

Abstract

In this study we examined the cerebellar response to mild traumatic brain injury by assessing microglial activation and Purkinje cell loss. Activated microglia were identified using the antibodies OX-42 and ED-1 as well as isolectin B4. The anti-Purkinje cell antibody PEP-19 was used to evaluate Purkinje cell loss after injury. The mechanism of cell injury was examined using a monoclonal antibody to the inducible 72-kDa heat shock protein. A monoclonal antibody to the N-terminal sequence of Fos was used as a marker for neuronal activation. There was progressive activation of microglia in the cerebellar vermis within a few days after forebrain injury. In coronal sections the processes of activated microglia were oriented in "stripes" perpendicular to the cortical surface. In sagittal sections the activated microglia were in irregularly shaped clusters or in a fan-like distribution that radiated from the Purkinje cell layer toward the cortical surface. There was a significant loss of Purkinje cells 7 days postinjury as compared to the control group. There was no evidence of induction of heat shock protein in the cerebellum. In addition, there was no evidence of induction of c-Fos protein in either the cerebellar cortex or inferior olivary nuclei within the first 3 h after injury. These studies demonstrate that a fluid percussive impact to the forebrain results in cerebellar damage. The close anatomical association between activated microglia and Purkinje cells suggests that Purkinje cell injury is the cause of the microglial activation. The mechanism of Purkinje cell death, however, remains unclear.

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Year:  1996        PMID: 8797175     DOI: 10.1089/neu.1996.13.255

Source DB:  PubMed          Journal:  J Neurotrauma        ISSN: 0897-7151            Impact factor:   5.269


  18 in total

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2.  Bergmann Glia are Patterned into Topographic Molecular Zones in the Developing and Adult Mouse Cerebellum.

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Authors:  Brent L Williams; Kavitha Yaddanapudi; Mady Hornig; W Ian Lipkin
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4.  Structural and functional alterations of cerebellum following fluid percussion injury in rats.

Authors:  Jinglu Ai; Elaine Liu; Eugene Park; Andrew J Baker
Journal:  Exp Brain Res       Date:  2006-08-22       Impact factor: 1.972

5.  cerebellar atrophy after moderate-to-severe pediatric traumatic brain injury.

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6.  [The undetected brain lesion in sports. Minor traumatic brain injury and its sequelae].

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7.  Ontogenesis of human cerebellar cortex and biopathological characterization in sudden unexplained fetal and infant death.

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8.  Evolution of cerebellar tonsillar ischemia to cerebellar tonsillar cysts in the Chiari I malformation: radiological, surgical, and histological evidence.

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Review 9.  A review of heat shock protein induction following cerebellar injury.

Authors:  Laura P R Reynolds; Gary V Allen
Journal:  Cerebellum       Date:  2003       Impact factor: 3.847

Review 10.  Models of traumatic cerebellar injury.

Authors:  Matthew B Potts; Hita Adwanikar; Linda J Noble-Haeusslein
Journal:  Cerebellum       Date:  2009-06-05       Impact factor: 3.847

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