Advance of Application of Micro Positron Emission Computed Tomography in Cerebral Ischemia Model (review)

  • LI Ying-ying ,
  • BAI Yu-long
Expand
  • Department of Rehabilitation Medicine, Huashan Hospital, Fudan University, Shanghai 200040, China

Received date: 2016-11-10

  Online published: 2017-08-07

Abstract

Micro positron emission computed tomography (PET) is a sort of tomography technique specifically for small animal studies. It can be used to observe radionuclide labeling molecules in vivo, especially for neuronal activities noninvasively, dynamically and quantitatively at the molecular level. MicroPET can be used for early detection of atherosclerotic plaques, measurement of cerebral blood flow, judgment of the survival status in cerebral ischemia area in animal model. It is important for the control of risk factors, disease diagnosis, disease staging and evaluation of curative effect.

Cite this article

LI Ying-ying , BAI Yu-long . Advance of Application of Micro Positron Emission Computed Tomography in Cerebral Ischemia Model (review)[J]. Chinese Journal of Rehabilitation Theory and Practice, 2017 , 23(7) : 770 -774 . DOI: 10.3969/j.issn.1006-9771.2017.07.006

References

[1] Go AS, Mozaffarian D, Roger VL, et al. Heart disease and stroke statistics–2013 update: a report from the American Heart Association [J]. Circulation, 2013, 127(1): e6-e245.
[2] 王琴,张春银. 小动物PET在缺血性脑血管病中的应用进展[J]. 中国医学影像技术, 2014, 30(7): 1117-1120.
[3] 李冬梅,万春丽,李继承. 小动物活体成像技术研究进展[J]. 中国生物医学工程学报, 2009, 28(6): 916-921.
[4] 胡华,苏亮,施慎逊,等. 小动物PET技术在精神疾病模型研究中的应用[J]. 上海精神医学, 2010, 22(2): 115-118.
[5] Takasawa M, Beech JS, Fryer TD, et al. Single-subject statistical mapping of acute brain hypoxia in the rat following middle cerebral artery occlusion: a microPET study [J]. Exp Neurol, 2011, 229(2): 251-258.
[6] Balsara RD, Chapman SE, Sander IM, et al. Non-invasive imaging and analysis of cerebral ischemia in living rats using positron emission tomography with 18 F-FDG [J]. J Vis Exp, 2014(94): 1-10.
[7] Koo V, Hamilton PW, Williamson K. Non-invasive in vivo imaging in small animal research [J]. Cell Oncol, 2006, 28(4): 127-139.
[8] 刘卓然. 微PET在临床前研究中的应用[J]. 临床医药实践, 2012, 21(2): 120-123.
[9] Bruehl C, Witte OW. Cellular activity underlying altered brain metabolism during focal epileptic activity [J]. Ann Neurol, 1995, 38(3): 414-420.
[10] Chugani HT, Hovda DA, Villablanca JR, et al. Metabolic maturation of the brain: a study of local cerebral glucose utilization in the developing cat [J]. J Cereb Blood Flow Metab, 1991, 11(1): 35-47.
[11] 王中娟,邓钢,黄洪波,等. 7.0 T MRI及Micro-PET无创检测小鼠动脉粥样硬化[J]. 中国医学影像技术, 2010, 26(2): 209-212.
[12] Davies JR, Izquierdo-Garcia D, Rudd JH, et al. FDG-PET can distinguish inflamed from non-inflamed plaque in an animal model of atherosclerosis [J]. Int J Cardiovasc Imaging, 2010, 26(1): 41-48.
[13] 王晓云,朱文斌,陈雪梅,等. 兔大脑中动脉局灶性脑缺血模型制作和正电子发射断层显像观察[J]. 中国脑血管病杂志, 2007, 4(1): 32-36.
[14] Lansberg MG, Albers GW, Beaulieu C, et al. Comparison of diffusion-weighted MRI and CT in acute stroke [J]. Neurology, 2000, 54(8): 1557-1561.
[15] Liebelt B, Papapetrou P, Ali A, et al. Exercise preconditioning reduces neuronal apoptosis in stroke by up-regulating heat shock protein-70 (heat shock protein-72) and extracellular-signal-regulated-kinase 1/2 [J]. Neuroscience, 2010, 166(4): 1091-1100.
[16] Zwagerman N, Sprague S, Davis MD, et al. Pre-ischemic exercise preserves cerebral blood flow during reperfusion in stroke [J]. Neurol Res, 2010, 32(5): 523-529.
[17] 梁胜,黄秋,李彪. Micro PET/CT用于急性缺血性中风早期功能性血管再生的研究[C]. 西安:中华医学会第九次全国核医学学术会议, 2011.
[18] Baron JC. Perfusion thresholds in human cerebral ischemia: historical perspective and therapeutic implications [J]. Cerebrovasc Dis, 2001, 11(Suppl 1): 2-8.
[19] Bernaudin M, Nedelec AS, Divoux D, et al. Normobaric hypoxia induces tolerance to focal permanent cerebral ischemia in association with an increased expression of hypoxia-inducible factor-1 and its target genes, erythropoietin and VEGF, in the adult mouse brain [J]. J Cereb Blood Flow Metab, 2002, 22(4): 393-403.
[20] Jung JE, Kim GS, Chen H, et al. Reperfusion and neurovascular dysfunction in stroke: from basic mechanisms to potential strategies for neuroprotection [J]. Mol Neurobiol, 2010, 41(2-3): 172-179.
[21] Saita K, Chen M, Spratt NJ, et al. Imaging the ischemic penumbra with 18 F-fluoromisonidazole in a rat model of ischemic stroke [J]. Stroke, 2004, 35(4): 975-980.
[22] Takasawa M, Beech JS, Fryer TD, et al. Imaging of brain hypoxia in permanent and temporary middle cerebral artery occlusion in the rat using 18 F-fluoromisonidazole and positron emission tomography: a pilot study [J]. J Cereb Blood Flow Metab, 2007, 27(4): 679-689.
[23] 张运周,朱克,尹岭, 等. 猫大脑中动脉闭塞后缺血脑组织早期葡萄糖代谢的研究[J]. 中华神经科杂志, 2002, 35(1): 25-28.
[24] Sobrado M, Delgado M, Fernandez-Valle E, et al. Longitudinal studies of ischemic penumbra by using 18 F-FDG PET and MRI techniques in permanent and transient focal cerebral ischemia in rats [J]. Neuroimage, 2011, 57(1): 45-54.
[25] Gao F, Wang S, Guo Y, et al. Protective effects of repetitive transcranial magnetic stimulation in a rat model of transient cerebral ischemia: a microPET study [J]. Eur J Nucl Med Mol Imaging, 2010, 37(5): 954-961.
[26] Badr AE, Yin W, Mychaskiw G, et al. Dual effect of HBO on cerebral infarction in MCAO rats [J]. Am J Physiol Regul Integr Comp Physiol, 2001, 280(3): R766-R770.
[27] Lou M, Eschenfelder CC, Herdegen T, et al. Therapeutic window for use of hyperbaric oxygenation in focal transient ischemia in rats [J]. Stroke, 2004, 35(2): 578-583.
[28] 冯娟娟. 即时高压氧对局灶性脑缺血再灌注大鼠脑梗死体积的影响[D]. 沈阳:中国医科大学, 2009.
[29] Lou M, Zhang H, Wang J, et al. Hyperbaric oxygen treatment attenuated the decrease in regional glucose metabolism of rats subjected to focal cerebral ischemia: a high resolution positron emission tomography study [J]. Neuroscience, 2007, 146(2): 555-561.
[30] 田浩梅,张泓,张娟,等. 针灸对缺血性脑卒中相关保护作用机制的研究概况[J]. 湖南中医药大学学报, 2012, 32(7): 75-78.
[31] Liu H, Shen X, Tang H, et al. Using microPET imaging in quantitative verification of the acupuncture effect in ischemia stroke treatment [J]. Sci Rep, 2013, 3: 1070.
[32] 黄伟. 超早期针刺对急性脑缺血大鼠能量代谢的影响及其机制研究[D]. 武汉:湖北中医药大学, 2010.
[33] 江晓峰,张通. 康复训练对局灶性脑缺血大鼠葡萄糖代谢的影响——MicroPET纵向研究[C]. 北京:第五届北京国际康复论坛, 2010.
[34] Takahashi K, Yamanaka S. Induction of pluripotent stem cells from mouse embryonic and adult fibroblast cultures by defined factors [J]. Cell, 2006, 126(4): 663-676.
[35] Wang J, Chao F, Han F, et al. PET demonstrates functional recovery after transplantation of induced pluripotent stem cells in a rat model of cerebral ischemic injury [J]. J Nucl Med, 2013, 54(5): 785-792.
[36] Du S, Guan J, Mao G, et al. Intra-arterial delivery of human bone marrow mesenchymal stem cells is a safe and effective way to treat cerebral ischemia in rats [J]. Cell Transplant, 2014, 23(Suppl 1): S73-S82.
[37] 郑晓娟. 野黄芩苷抗缺血性脑损伤作用及机制研究[D]. 上海:上海医药工业研究院, 2006.
[38] Wan H, Zhu H, Tian M, et al. Protective effect of Chuanxiongzine-puerarin in a rat model of transient middle cerebral artery occlusion-induced focal cerebral ischemia [J]. Nucl Med Commun, 2008, 29(12): 1113-1122.
[39] Yang J, Li J, Lu J, et al. Synergistic protective effect of astragaloside IV-tetramethylpyrazine against cerebral ischemic-reperfusion injury induced by transient focal ischemia [J]. J Ethnopharmacol, 2012, 140(1): 64-72.
[40] 华续赟. 健神经移位治疗中枢损伤后上肢偏瘫的应用研究[D]. 上海:复旦大学, 2012.
[41] 刘杰,金玉萍,白玉海,等. PET-CT与MRI观察短暂性脑缺血发作后脑缺血改变的对比研究[J]. 黑龙江医学, 2010, 34(1): 25-26.
[42] 张晶,蒋亚超,曹卫,等. 小动物PET在神经科学研究中的应用[J]. 科学通报, 2011, 56(23): 1871-1876.
Outlines

/