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自闭症症状模式:ADOS 和 ADI-R 工具中的隐藏结构。

Patterns of autism symptoms: hidden structure in the ADOS and ADI-R instruments.

机构信息

Department of Psychiatry, Psychotherapy, and Psychosomatics, RWTH Aachen University, Aachen, Germany.

Jülich Aachen Research Alliance (JARA)-Translational Brain Medicine, Aachen, Germany.

出版信息

Transl Psychiatry. 2020 Jul 30;10(1):257. doi: 10.1038/s41398-020-00946-8.

Abstract

We simultaneously revisited the Autism Diagnostic Interview-Revised (ADI-R) and Autism Diagnostic Observation Schedule (ADOS) with a comprehensive data-analytics strategy. Here, the combination of pattern-analysis algorithms and extensive data resources (n = 266 patients aged 7-49 years) allowed identifying coherent clinical constellations in and across ADI-R and ADOS assessments widespread in clinical practice. Our clustering approach revealed low- and high-severity patient groups, as well as a group scoring high only in the ADI-R domains, providing quantitative contours for the widely assumed autism subtypes. Sparse regression approaches uncovered the most clinically predictive questionnaire domains. The social and communication domains of the ADI-R showed convincing performance to predict the patients' symptom severity. Finally, we explored the relative importance of each of the ADI-R and ADOS domains conditioning on age, sex, and fluid IQ in our sample. The collective results suggest that (i) identifying autism subtypes and severity for a given individual may be most manifested in the ADI-R social and communication domains, (ii) the ADI-R might be a more appropriate tool to accurately capture symptom severity, and (iii) the ADOS domains were more relevant than the ADI-R domains to capture sex differences.

摘要

我们采用全面的数据分析策略,同时重新评估了自闭症诊断访谈修订版(ADI-R)和自闭症诊断观察量表(ADOS)。在这里,模式分析算法和广泛的数据资源(n=266 名年龄在 7-49 岁的患者)的结合,允许在广泛应用于临床实践的 ADI-R 和 ADOS 评估中识别连贯的临床组合。我们的聚类方法揭示了低严重度和高严重度患者群体,以及仅在 ADI-R 领域得分较高的群体,为广泛假设的自闭症亚型提供了定量轮廓。稀疏回归方法揭示了最具临床预测性的问卷领域。ADI-R 的社交和沟通领域表现出令人信服的性能,可以预测患者的症状严重程度。最后,我们探索了在我们的样本中,年龄、性别和流体智商对 ADI-R 和 ADOS 各个领域的相对重要性。总的来说,结果表明:(i)确定个体的自闭症亚型和严重程度可能最能体现在 ADI-R 的社交和沟通领域;(ii)ADI-R 可能是更准确地捕捉症状严重程度的更合适工具;(iii)ADOS 领域比 ADI-R 领域更能捕捉性别差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6a6/7393151/5c2839e00150/41398_2020_946_Fig1_HTML.jpg

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