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创新性研究间期的方法:图论方法提示 ADHD 青少年自主神经功能改变。

Innovative approaches in investigating inter-beat intervals: Graph theoretical method suggests altered autonomic functioning in adolescents with ADHD.

机构信息

Department of Clinical Medicine, University of Bergen, Bergen, Norway.

Division of Psychiatry, Haukeland University Hospital, Bergen, Norway.

出版信息

Psychophysiology. 2022 Jun;59(6):e14005. doi: 10.1111/psyp.14005. Epub 2022 Feb 6.

Abstract

Cardiac inter-beat intervals (IBIs) are considered to reflect autonomic functioning and self-regulatory abilities and are often investigated by traditional time- and frequency domain analyses. These analyses investigate IBI fluctuations across relatively long time series. The similarity graph algorithm is a nonlinear method that analyzes segments of IBI time series (i.e., time windows)-possibly being more sensitive to transient and spontaneous IBI fluctuations. We hypothesized that the similarity graph algorithm would detect differences between Attention-Deficit/Hyperactivity Disorder (ADHD) and control groups. Resting electrocardiogram (ECG) recordings were collected in 10-18-year-olds with ADHD (n = 37) and controls (n = 36). IBIs were converted to graphs that were subsequently investigated for similarity. We varied the criterion for defining IBIs as similar, assessing which setting best distinguished ADHD and control groups. Using this setting, we applied the similarity graph algorithm to time windows of 2-5, 6-13 and 12-25 s, respectively. We also performed traditional IBI analyses. Independent samples t tests assessed group differences. Results showed that a 1.5% criterion of similarity and a time window of 2-5 s best distinguished adolescents with ADHD and controls. The similarity graph algorithm showed a higher number of edges, maximum edges and cliques, and lower edges10+10/edges2+2 in the ADHD group compared to controls. The results suggested more similar IBIs in the ADHD group compared to the controls, possibly due to altered vagal activity and less effective regulation of heart rate. Traditional analyses did not detect any group differences. Consequently, the similarity graph algorithm might complement traditional IBI analyses as a marker of psychopathology.

摘要

心动间期(IBI)被认为反映了自主功能和自我调节能力,通常通过传统的时频域分析进行研究。这些分析研究了相对长的时间序列中 IBI 的波动。相似图算法是非线性方法,分析 IBI 时间序列的片段(即时间窗口)-可能对瞬态和自发性 IBI 波动更敏感。我们假设相似图算法将检测到注意力缺陷多动障碍(ADHD)和对照组之间的差异。对 10-18 岁的 ADHD(n=37)和对照组(n=36)进行了静息心电图(ECG)记录。将 IBI 转换为图形,随后对其相似性进行研究。我们改变了定义 IBI 相似的标准,评估了最佳区分 ADHD 和对照组的设置。使用此设置,我们分别将相似图算法应用于 2-5、6-13 和 12-25 s 的时间窗口。我们还进行了传统的 IBI 分析。独立样本 t 检验评估了组间差异。结果表明,相似度标准为 1.5%,时间窗口为 2-5 s 时,ADHD 青少年与对照组的区分效果最佳。与对照组相比,相似图算法在 ADHD 组中显示出更多的边缘、最大边缘和团块,以及更低的 edges10+10/edges2+2。结果表明,与对照组相比,ADHD 组的 IBI 更相似,这可能是由于迷走神经活动改变和心率调节效果降低。传统分析未检测到任何组间差异。因此,相似图算法可能补充传统 IBI 分析,作为精神病理学的标志物。

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