REDUCING CSF PARTIAL VOLUME EFFECTS TO ENHANCE DIFFUSION TENSOR IMAGING METRICS OF BRAIN MICROSTRUCTURE.

IF 0.7 Q3 MULTIDISCIPLINARY SCIENCES Technology and Innovation Pub Date : 2016-04-01 DOI:10.21300/18.1.2016.5
Lauren E. Salminen, T. Conturo, Jacob D. Bolzenius, R. Cabeen, E. Akbudak, R. Paul
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引用次数: 32

Abstract

Technological advances over recent decades now allow for in vivo observation of human brain tissue through the use of neuroimaging methods. While this field originated with techniques capable of capturing macrostructural details of brain anatomy, modern methods such as diffusion tensor imaging (DTI) that are now regularly implemented in research protocols have the ability to characterize brain microstructure. DTI has been used to reveal subtle micro-anatomical abnormalities in the prodromal phase ofº various diseases and also to delineate "normal" age-related changes in brain tissue across the lifespan. Nevertheless, imaging artifact in DTI remains a significant limitation for identifying true neural signatures of disease and brain-behavior relationships. Cerebrospinal fluid (CSF) contamination of brain voxels is a main source of error on DTI scans that causes partial volume effects and reduces the accuracy of tissue characterization. Several methods have been proposed to correct for CSF artifact though many of these methods introduce new limitations that may preclude certain applications. The purpose of this review is to discuss the complexity of signal acquisition as it relates to CSF artifact on DTI scans and review methods of CSF suppression in DTI. We will then discuss a technique that has been recently shown to effectively suppress the CSF signal in DTI data, resulting in fewer errors and improved measurement of brain tissue. This approach and related techniques have the potential to significantly improve our understanding of "normal" brain aging and neuropsychiatric and neurodegenerative diseases. Considerations for next-level applications are discussed.
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减少脑脊液部分容积效应增强脑微结构弥散张量成像指标。
近几十年来的技术进步现在允许通过使用神经成像方法对人体脑组织进行体内观察。虽然这一领域起源于能够捕捉大脑解剖学宏观结构细节的技术,但现在在研究协议中经常实施的扩散张量成像(DTI)等现代方法具有表征大脑微观结构的能力。DTI已被用于揭示各种疾病前驱期细微的微观解剖异常,也用于描绘整个生命周期中脑组织中与年龄相关的“正常”变化。然而,DTI中的成像伪影仍然是识别疾病和脑行为关系的真实神经特征的重大限制。脑脊液(CSF)对脑体素的污染是DTI扫描误差的主要来源,它会导致部分体积效应,降低组织表征的准确性。已经提出了几种方法来纠正CSF伪影,尽管其中许多方法引入了新的限制,可能会妨碍某些应用。这篇综述的目的是讨论信号采集的复杂性,因为它与DTI扫描的CSF伪影有关,并回顾DTI中CSF抑制的方法。然后,我们将讨论最近显示的一种技术,该技术可以有效地抑制DTI数据中的CSF信号,从而减少误差并改善脑组织的测量。这种方法和相关技术有可能显著提高我们对“正常”大脑衰老、神经精神和神经退行性疾病的理解。讨论了下一级应用程序的注意事项。
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来源期刊
Technology and Innovation
Technology and Innovation MULTIDISCIPLINARY SCIENCES-
自引率
20.00%
发文量
12
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