Waisman Center, University of Wisconsin-Madison, Madison, WI, USA.
Center for Healthy Minds, University of Wisconsin-Madison, Madison, WI, USA.
Sci Rep. 2017 Aug 29;7(1):9759. doi: 10.1038/s41598-017-09915-6.
White matter microstructure, essential for efficient and coordinated transmission of neural communications, undergoes pronounced development during the first years of life, while deviations to this neurodevelopmental trajectory likely result in alterations of brain connectivity relevant to behavior. Hence, systematic evaluation of white matter microstructure in the normative brain is critical for a neuroscientific approach to both typical and atypical early behavioral development. However, few studies have examined the infant brain in detail, particularly in infants under 3 months of age. Here, we utilize quantitative techniques of diffusion tensor imaging and neurite orientation dispersion and density imaging to investigate neonatal white matter microstructure in 104 infants. An optimized multiple b-value diffusion protocol was developed to allow for successful acquisition during non-sedated sleep. Associations between white matter microstructure measures and gestation corrected age, regional asymmetries, infant sex, as well as newborn growth measures were assessed. Results highlight changes of white matter microstructure during the earliest periods of development and demonstrate differential timing of developing regions and regional asymmetries. Our results contribute to a growing body of research investigating the neurobiological changes associated with neurodevelopment and suggest that characteristics of white matter microstructure are already underway in the weeks immediately following birth.
脑白质微观结构对于神经通讯的高效和协调传输至关重要,在生命的头几年经历了显著的发展,而这种神经发育轨迹的偏差可能导致与行为相关的大脑连接的改变。因此,对正常脑的白质微观结构进行系统评估对于神经科学方法研究典型和非典型早期行为发育都至关重要。然而,很少有研究详细研究婴儿的大脑,特别是在 3 个月以下的婴儿中。在这里,我们利用扩散张量成像和神经丝取向分散和密度成像的定量技术来研究 104 名婴儿的新生儿脑白质微观结构。开发了一种优化的多 b 值扩散方案,以允许在非镇静睡眠期间成功采集。评估了脑白质微观结构测量值与胎龄校正年龄、区域不对称性、婴儿性别以及新生儿生长测量值之间的相关性。结果强调了在发育的最早阶段脑白质微观结构的变化,并证明了发育区域和区域不对称性的不同时间进程。我们的研究结果有助于研究与神经发育相关的神经生物学变化的研究不断增加,并表明在出生后几周内,脑白质微观结构的特征已经在进行中。