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非自愿头部微运动的随机特征可用于将ABIDE研究中的女性患者分类为不同亚型的神经发育障碍。

Stochastic Signatures of Involuntary Head Micro-movements Can Be Used to Classify Females of ABIDE into Different Subtypes of Neurodevelopmental Disorders.

作者信息

Torres Elizabeth B, Mistry Sejal, Caballero Carla, Whyatt Caroline P

机构信息

Department of Psychology, Rutgers UniversityPiscataway, NJ, United States.

Computer Science Department and Rutgers Center for Cognitive Science, Center for Biomedical Imaging and ModelingNew Brunswick, NJ, United States.

出版信息

Front Integr Neurosci. 2017 Jun 7;11:10. doi: 10.3389/fnint.2017.00010. eCollection 2017.

Abstract

The approximate 5:1 male to female ratio in clinical detection of Autism Spectrum Disorder (ASD) prevents research from characterizing the female phenotype. Current open access repositories [such as those in the Autism Brain Imaging Data Exchange (ABIDE I-II)] contain large numbers of females to help begin providing a new characterization of females on the autistic spectrum. Here we introduce new methods to integrate data in a scale-free manner from continuous biophysical rhythms of the nervous systems and discrete (ordinal) observational scores. New data-types derived from image-based involuntary head motions and personalized statistical platform were combined with a data-driven approach to unveil sub-groups within the female cohort. Further, to help refine the clinical DSM-based ASD vs. Asperger's Syndrome (AS) criteria, distributional analyses of ordinal score data from Autism Diagnostic Observation Schedule (ADOS)-based criteria were used on both the female and male phenotypes. Separate clusters were automatically uncovered in the female cohort corresponding to differential levels of severity. Specifically, the AS-subgroup emerged as the most severely affected with an excess level of noise and randomness in the involuntary head micro-movements. Extending the methods to characterize males of ABIDE revealed ASD-males to be more affected than AS-males. A thorough study of ADOS-2 and ADOS-G scores provided confounding results regarding the ASD vs. AS male comparison, whereby the ADOS-2 rendered the AS-phenotype worse off than the ASD-phenotype, while ADOS-G flipped the results. Females with AS scored higher on severity than ASD-females in all ADOS test versions and their scores provided evidence for significantly higher severity than males. However, the statistical landscapes underlying female and male scores appeared disparate. As such, further interpretation of the ADOS data seems problematic, rather suggesting the critical need to develop an entirely new metric to measure social behavior in females. According to the outcome of objective, data-driven analyses and subjective clinical observation, these results support the proposition that the female phenotype is different. Consequently the "" will continue to mask the female autistic phenotype. It is our proposition that new observational behavioral tests ought to contain normative scales, be statistically sound and combined with objective data-driven approaches to better characterize the females across the human lifespan.

摘要

自闭症谱系障碍(ASD)临床检测中约5:1的男性与女性比例,阻碍了对女性表型特征的研究。当前的开放获取数据库(如自闭症脑成像数据交换库(ABIDE I-II)中的数据库)包含大量女性数据,有助于开始为自闭症谱系中的女性提供新的特征描述。在此,我们引入新方法,以无标度方式整合来自神经系统连续生物物理节律和离散(有序)观察评分的数据。从基于图像的非自主头部运动和个性化统计平台衍生的新数据类型,与数据驱动方法相结合,以揭示女性队列中的亚组。此外,为了帮助完善基于临床诊断与统计手册(DSM)的ASD与阿斯伯格综合征(AS)的标准,对基于自闭症诊断观察量表(ADOS)标准的有序评分数据进行分布分析,用于女性和男性表型。在女性队列中自动发现了对应不同严重程度水平的单独聚类。具体而言,AS亚组表现为受影响最严重,非自主头部微运动中存在过多的噪声和随机性。将这些方法扩展到对ABIDE男性的特征描述,发现ASD男性比AS男性受影响更大。对ADOS-2和ADOS-G评分的全面研究,在ASD与AS男性比较方面得出了混杂的结果,即ADOS-2使AS表型比ASD表型更差,而ADOS-G则使结果相反。在所有ADOS测试版本中,患有AS的女性在严重程度上的得分高于患有ASD的女性,且她们的得分表明其严重程度显著高于男性。然而,女性和男性得分背后的统计情况似乎不同。因此,对ADOS数据的进一步解读似乎存在问题,这反而表明迫切需要开发一种全新的指标来衡量女性的社交行为。根据客观的、数据驱动分析的结果以及主观临床观察,这些结果支持女性表型不同这一观点。因此,“”将继续掩盖女性自闭症表型。我们认为,新的观察行为测试应包含规范量表,在统计上合理,并与客观的数据驱动方法相结合,以更好地描述人类一生中的女性特征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d98a/5461345/9ab793dc3300/fnint-11-00010-g0001.jpg

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