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质子磁共振波谱:儿科神经学研究中的一项新兴技术。

Proton magnetic resonance spectroscopy: an emerging technology in pediatric neurology research.

作者信息

Novotny E, Ashwal S, Shevell M

机构信息

Department of Pediatrics, Yale University School of Medicine, New Haven, Connecticut 06510, USA.

出版信息

Pediatr Res. 1998 Jul;44(1):1-10. doi: 10.1203/00006450-199807000-00001.

Abstract

Proton magnetic resonance spectroscopy (MRS) is an emerging technology that allows for the quantitative noninvasive assessment of regional brain biochemistry. The capacity to carry out MRS studies requires existing magnetic resonance imaging (MRI) technology platforms and the purchase of commercially available software modifications. In this review, the physical basis for MRS will be presented leading to an understanding of its potential applications and limitations within the clinical research milieu. Thus far, within pediatric neurology, proton MRS studies have been used to assist in the prediction of outcome in a variety of settings of acquired brain injuries (perinatal asphyxia, near drowning). In addition, proton MRS has been used to document disturbances in oxidative metabolism in neurometabolic disorders, assisting in defining phenotype and the response to therapeutic interventions. In epilepsy, spectroscopic studies have been useful in localizing the epileptogenic zone in intractable focal epilepsies. Future applications of proton MRS will also be highlighted. These include its use as a means of observing the transport and metabolism of various compounds in the brain, its concurrent application with other nuclear magnetic resonance techniques such as MRI and functional MRI, and finally its potential as a means of assessing the short-term effects of any CNS targeted pharmacologic interventions.

摘要

质子磁共振波谱(MRS)是一项新兴技术,可对局部脑生物化学进行定量无创评估。开展MRS研究的能力需要现有的磁共振成像(MRI)技术平台,并购买市售的软件修改程序。在本综述中,将介绍MRS的物理基础,以便了解其在临床研究环境中的潜在应用和局限性。迄今为止,在儿科神经病学领域,质子MRS研究已被用于协助预测各种获得性脑损伤(围产期窒息、近乎溺水)情况下的预后。此外,质子MRS已被用于记录神经代谢疾病中氧化代谢的紊乱,有助于确定表型和对治疗干预的反应。在癫痫方面,波谱研究有助于定位难治性局灶性癫痫的致痫区。还将重点介绍质子MRS的未来应用。这些应用包括将其用作观察大脑中各种化合物的运输和代谢的手段,将其与其他核磁共振技术(如MRI和功能MRI)同时应用,以及最后将其作为评估任何中枢神经系统靶向药物干预短期效果的手段的潜力。

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