髓磷脂水的磁共振:髓磷脂的体内标志物。

Alex L MacKay, Cornelia Laule
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引用次数: 185

摘要

髓磷脂对健康的大脑功能至关重要。髓磷脂含量在体内的精确测量对理解脑可塑性和神经退行性疾病具有重要意义。髓鞘水显像是一种磁共振成像方法,可用于观察活体脑和脊髓的髓鞘形成。本文综述了髓磷脂水成像数据采集和分析、死后验证工作、动物和人类研究的发现,并简要讨论了旨在提供体内髓磷脂含量的其他磁共振技术。多回声T2松弛入路继续发展,全脑成像时间现在不到10分钟;这类数据采集的标准分析方法是非负最小二乘方法。其他方法包括多翻转角度梯度回波mcDESPOT也被用于髓鞘水成像。在动物和人类大脑和脊髓组织中的组织学验证研究表明髓磷脂水显像对髓磷脂具有高特异性。体内髓磷脂水分数测量的潜在混淆因素包括髓磷脂碎片和磁化交换过程的存在。髓磷脂水显像已成功地用于研究动物损伤模型,应用于健康的人类对照,并可用于评估多发性硬化症、视神经脊髓炎、精神分裂症、苯丙酮尿症、神经纤维瘤病、尼曼皮克病、中风和脑震荡等疾病的损伤和损伤。其他对髓磷脂敏感但不特定的定量磁共振方法包括磁化转移、扩散张量成像和T1加权成像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Magnetic Resonance of Myelin Water: An in vivo Marker for Myelin.

Myelin is critical for healthy brain function. An accurate in vivo measure of myelin content has important implications for understanding brain plasticity and neurodegenerative diseases. Myelin water imaging is a magnetic resonance imaging method which can be used to visualize myelination in the brain and spinal cord in vivo. This review presents an overview of myelin water imaging data acquisition and analysis, post-mortem validation work, findings in both animal and human studies and a brief discussion about other MR techniques purported to provide in vivo myelin content. Multi-echo T2 relaxation approaches continue to undergo development and whole-brain imaging time now takes less than 10 minutes; the standard analysis method for this type of data acquisition is a non-negative least squares approach. Alternate methods including the multi-flip angle gradient echo mcDESPOT are also being used for myelin water imaging. Histological validation studies in animal and human brain and spinal cord tissue demonstrate high specificity of myelin water imaging for myelin. Potential confounding factors for in vivo myelin water fraction measurement include the presence of myelin debris and magnetization exchange processes. Myelin water imaging has successfully been used to study animal models of injury, applied in healthy human controls and can be used to assess damage and injury in conditions such as multiple sclerosis, neuromyelitis optica, schizophrenia, phenylketonuria, neurofibromatosis, niemann pick's disease, stroke and concussion. Other quantitative magnetic resonance approaches that are sensitive to, but not specific for, myelin exist including magnetization transfer, diffusion tensor imaging and T1 weighted imaging.

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