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利用静息态内在网络连接来识别心境障碍中的自杀风险。

Using resting-state intrinsic network connectivity to identify suicide risk in mood disorders.

机构信息

University of Illinois at Chicago, Chicago, IL, USA.

Northwestern University, Chicago, IL, USA.

出版信息

Psychol Med. 2020 Oct;50(14):2324-2334. doi: 10.1017/S0033291719002356. Epub 2019 Oct 10.

Abstract

BACKGROUND

Little is known about the neural substrates of suicide risk in mood disorders. Improving the identification of biomarkers of suicide risk, as indicated by a history of suicide-related behavior (SB), could lead to more targeted treatments to reduce risk.

METHODS

Participants were 18 young adults with a mood disorder with a history of SB (as indicated by endorsing a past suicide attempt), 60 with a mood disorder with a history of suicidal ideation (SI) but not SB, 52 with a mood disorder with no history of SI or SB (MD), and 82 healthy comparison participants (HC). Resting-state functional connectivity within and between intrinsic neural networks, including cognitive control network (CCN), salience and emotion network (SEN), and default mode network (DMN), was compared between groups.

RESULTS

Several fronto-parietal regions (k > 57, p < 0.005) were identified in which individuals with SB demonstrated distinct patterns of connectivity within (in the CCN) and across networks (CCN-SEN and CCN-DMN). Connectivity with some of these same regions also distinguished the SB group when participants were re-scanned after 1-4 months. Extracted data defined SB group membership with good accuracy, sensitivity, and specificity (79-88%).

CONCLUSIONS

These results suggest that individuals with a history of SB in the context of mood disorders may show reliably distinct patterns of intrinsic network connectivity, even when compared to those with mood disorders without SB. Resting-state fMRI is a promising tool for identifying subtypes of patients with mood disorders who may be at risk for suicidal behavior.

摘要

背景

人们对心境障碍中自杀风险的神经基础知之甚少。改善自杀风险生物标志物的识别,如自杀相关行为(SB)史所表明的那样,可能会导致更有针对性的治疗方法来降低风险。

方法

参与者包括 18 名有 SB 病史的心境障碍年轻成年人(表现为过去有自杀企图)、60 名有 SI 但无 SB 病史的心境障碍患者、52 名无 SI 或 SB 病史的心境障碍患者(MD)和 82 名健康对照组(HC)。在组间比较了包括认知控制网络(CCN)、突显和情绪网络(SEN)和默认模式网络(DMN)在内的内在神经网络内和之间的静息态功能连接。

结果

在 SB 个体中,几个额顶区域(k > 57,p < 0.005)显示出网络内(CCN)和跨网络(CCN-SEN 和 CCN-DMN)连接的独特模式。当参与者在 1-4 个月后重新扫描时,这些相同区域的连接也可以区分 SB 组。提取的数据以良好的准确性、灵敏度和特异性(79-88%)定义了 SB 组的成员身份。

结论

这些结果表明,在心境障碍背景下有 SB 病史的个体可能表现出可靠的内在网络连接模式,即使与没有 SB 的心境障碍患者相比也是如此。静息态 fMRI 是一种很有前途的工具,可以识别可能有自杀行为风险的心境障碍患者的亚组。

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