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Neuronal or Hemodynamic? Grappling with the Functional MRI Signal

机译:神经元还是血液动力学?掌握功能性MRI信号

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摘要

Magnetic resonance imaging (MRI) and functional MRI (fMRI) continue to advance because creative physicists, engineers, neuroscientists, clinicians, and physiologists find new ways for extracting more information from the signal. Innovations in pulse sequence design, paradigm design, and processing methods have advanced the field and firmly established fMRI as a cornerstone for understanding the human brain. In this article, the field of fMRI is described through consideration of the central problem of separating hemodynamic from neuronal information. Discussed here are examples of how pulse sequences, activation paradigms, and processing methods are integrated such that novel, high-quality information can be obtained. Examples include the extraction of information such as activation onset latency, metabolic rate, neuronal adaptation, vascular patency, vessel diameter, vigilance, and subvoxel activation. Experimental measures include time series latency, hemodynamic shape, MR phase, multivoxel patterns, ratios of activation-related R2* to R2, metabolic rate changes, fluctuation correlations and frequencies, changes in fluctuation correlations and frequencies over time, resting correlation states, echo time dependence, and more.
机译:磁共振成像(MRI)和功能性MRI(fMRI)继续发展,因为有创造力的物理学家,工程师,神经科学家,临床医生和生理学家找到了从信号中提取更多信息的新方法。脉冲序列设计,范例设计和处理方法的创新已经推动了该领域的发展,并牢固地将fMRI确立为了解人脑的基石。在本文中,fMRI的领域是通过考虑将血液动力学与神经元信息分离的中心问题来描述的。此处讨论的示例是如何集成脉冲序列,激活范例和处理方法,以便可以获取新颖的高质量信息。示例包括信息的提取,例如激活开始潜伏期,代谢率,神经元适应,血管通畅,血管直径,警惕性和亚体素激活。实验措施包括时间序列潜伏期,血液动力学形状,MR相,多体素模式,与激活相关的R2 *与R2的比率,代谢率变化,波动相关性和频率,波动相关性和频率随时间的变化,静止相关状态,回波时间依赖等等。

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