Compression injury of mammalian spinal cord in vitro and the dynamics of action potential conduction failure

被引:104
作者
Shi, R [1 ]
Blight, AR [1 ]
机构
[1] UNIV N CAROLINA, DIV NEUROSURG, CHAPEL HILL, NC 27599 USA
关键词
D O I
10.1152/jn.1996.76.3.1572
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
1. White matter strips from the ventral spinal cord of adult guinea pigs were isolated in vitro, and their electrophysiological characteristics and response to controlled focal compression injury were examined. A double sucrose gap technique was used for stimulation and recording at opposite ends of a 12.5-mm-diam central well superfused with oxygenated Krebs solution. 2. The compound action potential recorded with the sucrose gap was similar in form to single fiber potentials recorded with intra-axonal electrodes, including the presence of a prolonged depolarizing afterpotential. 3. Three types of conduction block resulting from compression were identified: an immediate, spontaneously reversible component, which may result from a transient increase in membrane permeability and consequent disturbance of ionic distribution; a second component that was irreversible within 1-2 h of recording, perhaps resulting from complete axolemmal disruption; and a third component, which may have been due to disruption of the myelin sheath, that appeared to be reversible with application of 10-100 mu M of the potassium channel blocker 4-aminopyridine. 4. Conduction deficits-decreased amplitude and increased latency of the compound potential-were stable between 5 and 60 min postinjury, and their intensity corellated with the extent of initial compression over a full range of severity. 5. Stimulus-response data indicate that mechanical damage to axons in compression was evenly distributed across the caliber spectrum, suggesting that the susceptibility of large caliber axons seen histopathologically after injury in vivo may be based on delayed, secondary processes. 6. The model provides the ability to monitor changes in the properties of central myelinated axons after compression injury in the absence of pathological variables related to vascular damage. This initial investigation found no evidence of secondary deterioration of axons in the 1st h after injury, although there was evidence of both transient and lasting mechanical damage to axons and their myelin sheaths.
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页码:1572 / 1580
页数:9
相关论文
共 54 条
[1]  
Agrawal SK, 1996, J NEUROSCI, V16, P545
[2]   Remarks on the histopathological changes in the spinal cord due to impact - An experimental study [J].
Allen, AR .
JOURNAL OF NERVOUS AND MENTAL DISEASE, 1914, 41 :141-147
[3]  
ASANO T, 1995, J NEUROTRAUM, V12, P993
[4]   A QUANTITATIVE STUDY OF ELECTRICAL STIMULATION OF CENTRAL MYELINATED FIBERS [J].
BEMENT, SL ;
RANCK, JB .
EXPERIMENTAL NEUROLOGY, 1969, 24 (02) :147-+
[5]  
Blight A R, 1985, Cent Nerv Syst Trauma, V2, P299
[6]   EFFECTS OF SILICA ON THE OUTCOME FROM EXPERIMENTAL SPINAL-INJURY - IMPLICATION OF MACROPHAGES IN SECONDARY TISSUE-DAMAGE [J].
BLIGHT, AR .
NEUROSCIENCE, 1994, 60 (01) :263-273
[7]   QUINOLINIC ACID ACCUMULATION AND FUNCTIONAL DEFICITS FOLLOWING EXPERIMENTAL SPINAL-CORD INJURY [J].
BLIGHT, AR ;
COHEN, TI ;
SAITO, K ;
HEYES, MP .
BRAIN, 1995, 118 :735-752
[8]   MORPHOMETRIC ANALYSIS OF A MODEL OF SPINAL-CORD INJURY IN GUINEA-PIGS, WITH BEHAVIORAL EVIDENCE OF DELAYED SECONDARY PATHOLOGY [J].
BLIGHT, AR .
JOURNAL OF THE NEUROLOGICAL SCIENCES, 1991, 103 (02) :156-171
[9]   DEPOLARIZING AFTERPOTENTIALS IN MYELINATED AXONS OF MAMMALIAN SPINAL-CORD [J].
BLIGHT, AR ;
SOMEYA, S .
NEUROSCIENCE, 1985, 15 (01) :1-12
[10]   AXONAL PHYSIOLOGY OF CHRONIC SPINAL-CORD INJURY IN THE CAT - INTRACELLULAR-RECORDING INVITRO [J].
BLIGHT, AR .
NEUROSCIENCE, 1983, 10 (04) :1471-1486