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B Ragel

Publications and source records attributed to B Ragel.

2 recordsLinked to original sources

A proposed technique for intraoperative measurement of cervical spine stiffness.

OBJECTIVE: Classically cervical biomechanical data have been obtained using cadaver models. Few methods exist for in vivo measurement of cervical biomechanics. A technique for intraoperative measurement of cervical motion segment stiffness (load-axial displacement) has been developed, enabling load/displacement data to be obtained during surgery at the spinal levels operated on and at adjacent cervical levels. METHODS: The instrument used for measuring motion segment stiffness was a vertebral retractor equipped with displacement and strain transducers and designed to be placed over the shafts of Caspar distraction screws. Stiffness was measured under simulated anterior cervical surgical conditions. RESULTS: A preliminary study deciphering axial cervical spine load/displacement data on 12 cadavers was performed with this instrument. Using a distraction load of 88.8640 N, axial displacements of 2.110 +/- 0.258 mm (mean +/- standard error of the mean) at C3-C4, 2.367 +/- 0.304 mm at C4-C5, and 2.207 +/- 0.238 mm at C5-C6 were found. When data were evaluated for age, there was a significant decrease in stiffness with advancing age in two of the three spinal segments tested (P < 0.05 for C3-C4, P < 0.04 for C4-C5, P < 0.12 for C5-C6), which correlated with previous studies. CONCLUSION: These results suggest that this technique may be useful in assessing intraoperative motion-segment stability.

Adult↗

Cortical basic fibroblast factor expression after head injury: preliminary results.

Growth factors are important for normal development and maturation of the CNS. Recently, interest has centred on the role of these factors in response to the CNS injury. Basic Fibroblast Growth Factor (bFGF) stimulates mitogenesis of neuroectodermal tissues, potentially promoting neuronal survival and astrocytic growth suggesting a possible role following injury. We have studied expression of bFGF in male Sprague-Dawley rats subjected to a fluid percussion head injury of 4 atmospheres. Sham operated controls and injured animals were perfused 48 h after injury. 50 micron frozen sections of fixed tissue were immunohistochemically analysed for bFGF expression using the avidin-biotin complex technique with antibodies to bFGF. In the cortex, bFGF expression on astrocytes was enhanced in the injured hemisphere as compared with the contralateral uninjured hemisphere or controls (914 vs. 334 cells/mm2). bFGF expression in the hippocampal (CA2) neurons was the same for both normal and injured rats. The finding of enhanced bFGF in the cortex is consistent with the pathologic astrocytic responses found 48 h after injury and may correlate with later gliosis. These results suggest further study of bFGF, its temporal expression and relationship to other growth factors is warranted.

Animals↗