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脑白质纤维束结构的毕生演变。

Evolution of white matter tract microstructure across the life span.

机构信息

Laboratory of Research in Neuroimaging (LREN) - Department of Clinical Neurosciences - CHUV, University of Lausanne, Lausanne, Switzerland.

Department of Psychiatry - CHUV, University of Lausanne, Lausanne, Switzerland.

出版信息

Hum Brain Mapp. 2019 May;40(7):2252-2268. doi: 10.1002/hbm.24522. Epub 2019 Jan 23.

Abstract

The human brain undergoes dramatic structural change over the life span. In a large imaging cohort of 801 individuals aged 7-84 years, we applied quantitative relaxometry and diffusion microstructure imaging in combination with diffusion tractography to investigate tissue property dynamics across the human life span. Significant nonlinear aging effects were consistently observed across tracts and tissue measures. The age at which white matter (WM) fascicles attain peak maturation varies substantially across tissue measurements and tracts. These observations of heterochronicity and spatial heterogeneity of tract maturation highlight the importance of using multiple tissue measurements to investigate each region of the WM. Our data further provide additional quantitative evidence in support of the last-in-first-out retrogenesis hypothesis of aging, demonstrating a strong correlational relationship between peak maturational timing and the extent of quadratic measurement differences across the life span for the most myelin sensitive measures. These findings present an important baseline from which to assess divergence from normative aging trends in developmental and degenerative disorders, and to further investigate the mechanisms connecting WM microstructure to cognition.

摘要

人类大脑在整个生命周期中经历显著的结构变化。在一个包含 801 名年龄在 7 至 84 岁个体的大型成像队列中,我们应用定量弛豫度和扩散微观结构成像结合扩散轨迹追踪技术,研究了人类整个生命周期中的组织特性变化。在各个轨迹和组织测量中都观察到了显著的非线性衰老效应。白质(WM)束达到成熟峰值的年龄因组织测量和轨迹而异。这些关于轨迹成熟的异时性和空间异质性的观察结果强调了使用多种组织测量来研究 WM 每个区域的重要性。我们的数据进一步提供了额外的定量证据,支持衰老的后出先至逆行发生假说,表明在整个生命周期中,最敏感的髓鞘测量的峰值成熟时间与二次测量差异的程度之间存在很强的相关性。这些发现提供了一个重要的基线,可用于评估发育和退行性疾病中与正常衰老趋势的差异,并进一步研究将 WM 微观结构与认知联系起来的机制。

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