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Toward discovery science of human brain function

机译:走向人类大脑功能的发现科学

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摘要

Although it is being successfully implemented for exploration of the genome, discovery science has eluded the functional neuro-imaging community. The core challenge remains the development of common paradigms for interrogating the myriad functional systems in the brain without the constraints of a priori hypotheses. Resting-state functional MRI (R-fMRI) constitutes a candidate approach capable of addressing this challenge. Imaging the brain during rest reveals large-amplitude spontaneous low-frequency (< 0.1 Hz) fluctuations in the fMRI signal that are temporally correlated across functionally related areas. Referred to as functional connectivity, these correlations yield detailed maps of complex neural systems, collectively constituting an individual's "functional connectome." Reproducibility across datasets and individuals suggests the functional connectome has a common architecture, yet each individual's functional connectome exhibits unique features, with stable, meaningful interindividual differences in connectivity patterns and strengths. Comprehensive mapping of the functional connectome, and its subsequent exploitation to discern genetic influences and brain-behavior relationships, will require multicen-ter collaborative datasets. Here we initiate this endeavor by gathering R-fMRI data from 1,414 volunteers collected independently at 35 international centers. We demonstrate a universal architecture of positive and negative functional connections, as well as consistent loci of inter-individual variability. Age and sex emerged as significant determinants. These results demonstrate that independent R-fMRI datasets can be aggregated and shared. High-throughput R-fMRI can provide quantitative phenotypes for molecular genetic studies and biomarkers of developmental and pathological processes in the brain.
机译:尽管已经成功地将其用于基因组探索,但是发现科学已经掩盖了功能性神经成像社区。核心挑战仍然是在没有先验假设约束的情况下询问大脑无数功能系统的常见范例的发展。静止状态功能性MRI(R-fMRI)构成了能够应对这一挑战的候选方法。对休息期间的大脑进行成像可以发现功能磁共振成像信号中的大幅度自发性低频(<0.1 Hz)波动,这些波动在功能相关区域之间具有时间相关性。这些相关性称为功能连通性,可以产生复杂的神经系统的详细图谱,共同构成一个人的“功能连通体”。数据集和个人之间的可重复性表明,功能连接套具有通用的体系结构,但每个人的功能连接套都具有独特的功能,在连接方式和强度方面存在稳定,有意义的个体差异。功能连接体的全面定位及其随后的用于识别遗传影响和脑-行为关系的开发将需要多中心协作数据集。在这里,我们通过从35个国际中心独立收集的1,414名志愿者收集R-fMRI数据来启动这项工作。我们展示了一个正负功能连接的通用体系结构,以及个体间变异的一致位点。年龄和性别成为重要的决定因素。这些结果表明,可以聚合和共享独立的R-fMRI数据集。高通量R-fMRI可以为分子遗传学研究和大脑发育与病理过程的生物标记物提供定量表型。

著录项

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  • 作者单位

    Department of Radiology, New Jersey Medical School, Newark, NJ 07103;

    Phyllis Green and Randolph Cowen Institute for Pediatric Neuroscience, New York University Child Study Center, NYU Langone Medical Center, New York, NY 10016;

    Phyllis Green and Randolph Cowen Institute for Pediatric Neuroscience, New York University Child Study Center, NYU Langone Medical Center, New York, NY 10016;

    Department of Radiology, New Jersey Medical School, Newark, NJ 07103;

    Phyllis Green and Randolph Cowen Institute for Pediatric Neuroscience, New York University Child Study Center, NYU Langone Medical Center, New York, NY 10016;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    database; neuroimaging; open access; reproducibility; resting state;

    机译:数据库;神经影像开放获取;重现性静止状态;
  • 入库时间 2022-08-18 00:41:15

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