应用神经突定向弥散和密度成像技术在体婴儿脑微结构制图。

IF 2.9 3区 医学 Q1 ANATOMY & MORPHOLOGY
Yanbin Niu, M Catalina Camacho, Kurt G Schilling, Kathryn L Humphreys
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引用次数: 0

摘要

扩散磁共振成像(dMRI)是一种非侵入性神经成像技术,可以测量组织中水分子随时间的位移。由于dMRI对受膜、轴突和髓鞘等细胞结构影响的微米尺度水运动的敏感性,dMRI是探测组织微观结构的独特方法。在dMRI分析方法中,神经突定向分散和密度成像(NODDI)是一种生物物理建模技术,可以表征大脑的细胞结构和骨髓结构特征。出生后早期的特点是快速和动态的生物过程,如轴突生长、树突乔木和突触发生,这些变化以NODDI可以检测到的方式改变了微观结构环境。因此,NODDI为描述早期大脑发育提供了一种很有前途的方法,提供了对这些成熟事件有反应的组织组织的生物学特异性标记。这篇综述介绍了NODDI在婴儿早期应用的最新文献,展示了它在绘制规范发育轨迹、调查早产儿群体的变化以及将微观结构特性与环境影响和新兴行为结果联系起来方面的效用。虽然目前的文献提供了早期微观结构发育模式的初步见解,但NODDI在婴儿期的应用仍然有限,现有的研究受到样本量小、年龄覆盖范围有限和缺乏纵向数据的限制。尽管如此,初步证据表明,NODDI可以补充传统的扩散指标,并可能为早期神经成熟和可塑性提供新的见解。在婴儿期继续应用和改进NODDI的方法可能有助于描述大脑发育的敏感期,并改善对新兴神经行为表型的解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

In vivo mapping of infant brain microstructure with neurite orientation dispersion and density imaging.

In vivo mapping of infant brain microstructure with neurite orientation dispersion and density imaging.

In vivo mapping of infant brain microstructure with neurite orientation dispersion and density imaging.

In vivo mapping of infant brain microstructure with neurite orientation dispersion and density imaging.

Diffusion magnetic resonance imaging (dMRI) is a non-invasive neuroimaging technique that measures the displacement of water molecules in tissue over time. Due to its sensitivity to micron-scale water movement, which is influenced by cellular structures like membranes, axons, and myelin, dMRI is a unique method for probing tissue microstructure. Among dMRI analysis approaches, neurite orientation dispersion and density imaging (NODDI) is a biophysical modeling technique that enables the characterization of cytoarchitectural and myeloarchitectural features in the brain. The early postnatal period is characterized by rapid and dynamic biological processes such as axonal growth, dendritic arborization, and synaptogenesis-changes that alter the microstructural environment in ways that are detectable by NODDI. Thus, NODDI presents a promising approach for characterizing early brain development, offering biologically specific markers of tissue organization that are responsive to these maturational events. This review presents emerging literature on NODDI applications during early infancy, demonstrating its utility in mapping normative developmental trajectories, investigating alterations in preterm populations, and linking microstructural properties to environmental influences and emerging behavioral outcomes. While current literature offers initial insights into early microstructural development patterns, NODDI applications in infancy remain limited, and existing studies are constrained by small sample sizes, limited age coverage, and lack of longitudinal data. Nonetheless, initial evidence suggests that NODDI can complement conventional diffusion metrics and may provide novel insights into early neural maturation and plasticity. Continued application and methodological refinement of NODDI in infancy may help delineate sensitive periods of brain development and improve the interpretation of emerging neurobehavioral phenotypes.

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来源期刊
Brain Structure & Function
Brain Structure & Function 医学-解剖学与形态学
CiteScore
6.00
自引率
6.50%
发文量
168
审稿时长
8 months
期刊介绍: Brain Structure & Function publishes research that provides insight into brain structure−function relationships. Studies published here integrate data spanning from molecular, cellular, developmental, and systems architecture to the neuroanatomy of behavior and cognitive functions. Manuscripts with focus on the spinal cord or the peripheral nervous system are not accepted for publication. Manuscripts with focus on diseases, animal models of diseases, or disease-related mechanisms are only considered for publication, if the findings provide novel insight into the organization and mechanisms of normal brain structure and function.
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