期刊文献+

脑血肿周围继发性神经元损伤的磁共振波谱可行性研究 被引量:4

Feasibility of MR spectroscopy in perihematomal secondary neuronal injury after intracerebral hemorrhage
暂未订购
导出
摘要 目的评价1H-MRS在脑血肿周围继发性神经元损伤研究中的可行性,并对其价值进行初步探讨。方法对25例发病4周内颅内出血(ICH)患者进行MRS检查,观察血肿周围组织的MRS谱线,定量分析NAA变化和检测乳酸峰。结果88%(22/25)患者血肿周围组织获得可以进行分析的谱线。血肿周围NAA/Cr较对侧对称区域降低(11.3±8.5)%(P<0.01),NAA/Cr降低程度与血肿体积呈显著的正相关(r=0.674,P<0.05)。6例可见明确的乳酸峰。结论MRS可以应用于血肿周围损伤的研究。血肿周围NAA/Cr降低,在一定前提下反映血肿周围神经元损伤。部分患者血肿周围出现乳酸峰,但并不足以作为组织缺血的证据。 Objective To verify the feasibility of MR spectroscopy (MRS) in perihematomal secondary neural after intracerebral hemorrhage (ICH) and assess its clinical value. Methods Twenty-five cases of intracerebral hemorrhage within 4 weeks after onsets were performed with MRS study, the NAA/Cr around the hemorrhage in those patients was compared with the counterparts of the symmetric area and the peaks of lactic acid were counted. Results The spectrum lines available for analysis could be obtained from 88% (22/25) of patients. The NAA/Cr around the hemorrhage decreased ([-11.3 ± 8. 5] %) in relative to the symmetric area. The degree of the decreasing was positive correlated with the hemorrhage volume (r =0. 674, P〈0.05). Lactic acid peaks could be obviously observed in 6 cases. Conclusion MRS can be applied to study the secondary neural injury around hemorrhage. The result shows that the NAA/Cr decreases in gross samples. Under a certain premise it reflects the decrease of neurons around the hemorrhage. In some cases lactic acid peaks were observed on MR spectrum, however, it should not be a certain mark of ischemic.
出处 《中国医学影像技术》 CSCD 北大核心 2007年第6期841-844,共4页 Chinese Journal of Medical Imaging Technology
基金 江苏省卫生厅医学科技发展基金重大招标课题(H200301)
关键词 颅内出血 磁共振波谱学 神经元 Intracerebral hemorrhage Magnetic resonance spectroscopy Neuron
  • 相关文献

参考文献11

  • 1李华钢,章军建.磁共振波谱分析在脑梗死中的应用[J].国外医学(脑血管疾病分册),2003,11(6):442-445. 被引量:6
  • 2Kidwell CS,Chalela JA,Saver JL,et al.Comparison of MRI and CT for detection of acute intracerebral hemorrhage[J].JAMA,2004,292(15):1823-1830.
  • 3Tsushima Y,Aoki J,Endo K.Brain microhemorrhages detected on T2*-weighted gradient-echo MR images[J].AJNR,2003,24(1):88-96.
  • 4Pipe JG,Farthing VG,Forbes KP.Multishot diffusion-weighted FSE using PROPELLER MRI[J].Magn Reson Med,2002,47(1):42-52.
  • 5Carhuapoma JR,Wang PY,Beauchamp NJ,et al.Diffusion-weighted MRI and proton MR spectroscopic imaging in the study of secondary neuronal injury after intracerebral hemorrhage[J].Stroke,2000,31(3):726-732.
  • 6Kobayashi M,Takayama H,Suga S,et al.Longitudinal changes of metabolites in frontal lobes after hemorrhagic stroke of basal ganglia:a proton magnetic resonance spectroscopy study[J].Stroke,2001,32(10):2237-2245.
  • 7Qureshi AI,Tuhrim S,Broderick JP,et al.Spontaneous intracerebral hemorrhage[J].N Engl J Med,2001,344(19):1450-1460.
  • 8Mun-Bryce S,Kroh FO,Whith J,et al.Brain lactate and pH dissociation in edema:1H and 31P-NMR in collagenase-induced hemorrhage in rats[J].Am J Physiol,1993,265(3):R679-702.
  • 9Qureshi AI,Wilson DA,Hanley DF,et al.No evidence for an ischemic penumbra in massive experimental intracerebral hemorrhage[J].Neurology,1999,52(2):266-272.
  • 10Zazulia AR,Diringer MN,Videen TO,et al.Hypoperfusion without ischemia surrounding acute intracerebral hemorrhage[J].J Cereb Blood Flow Metab,2001,21(7):804-810.

二级参考文献31

  • 1Mathews VP, Barker PB, Blackband SJ, et al. Cerebral metabolites in patients with acute and subacute strokes: concentrations determined by quantitative proton MR spectroscopy. AIR Am J Roentgenol,1995. 165:633 - 638.
  • 2Dempsey RJ, Baskaya MK, Combs DJ, et al. Delayed hyperglycemia and mtracellular acidosis during focal cerebral ischemia m cats. Acta Neurochir: (Wien), 1996, 138:745 -751.
  • 3Blumberg RM, Cady EB, Wigglesworth JS, et al. Relation between delayed impairment of cerebral energy metabolism and infarction following transient focal hypoxia-ischacmia ha the develophag brain.Exp Brah Res, 1997, 113:130 - 137.
  • 4Dreher W, Kuhn B, Gyngell ML, et al. Temporal and regional changes diirhag focal ischemia in rat brain studied by proton spectroscopic imaging and quantitative diffusion NMR hnagmg. Magn Reson Med, 1998, 39:878 - 888.
  • 5Sager TN, Laurscn H, Fink-Jensen A, et al. N-Acetylaspartatc distribution in rat brain striatum during acute braki ischemia. J Cercb Blood Flow Metab, 1999, 19: 164 - 172.
  • 6Higuchi T, Fernandez EI, Maudsley AA, et al. Mapping of lactate and N-acetyl-L-aspartate predicts infarction during acute focal ischemia:in vivo ^1 H magnetic resonance spectroscopy in rats. Neurosurgery, 1996, 38:129 - 130.
  • 7Parsons MW, Li T, Barber PA, et al. Combhaed ^1H MR spectroscopy and diffusion-weighted MRI improves the prediction of stroke outcome. Neurology, 2000, 55:498 - 505.
  • 8Wild JM, Wardlaw JM, Marshall I, et al. N-acetylaspartate distribution in proton spectroscopic knages of ischemic stroke: relationship to infarct appearance on T2-weighted magnetic resonance imaging.Stroke, 2000, 31 : 3008 - 3014.
  • 9Demougeot C, Walker P, Beley A, et al. Spectroscopic data following stroke reveal tissue abnormality beyond the region of T2-weighted hypermtensity. J Neurol Sci, 2002, 199:73 -78.
  • 10Saunders DE, Howe FA, van den Boogaart A, et al. Continuing ischemic damage after acute middle cerebral artery infarction in humans demonstrated by short-echo proton spectroscopy. Stroke,1995, 26: 1007 - 1013.

共引文献5

同被引文献33

引证文献4

二级引证文献17

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部