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全球10-24岁年龄组中抑郁症的负担及早期风险因素模型的构建

The burden of depressive disorder among the global 10-24 age group and the construction of an early risk factors model.

作者信息

Guo Yangyi, Lu Hongxin, Chen Aidi, Guo Jing, Lai Yuyang, Lu Zhengyou

机构信息

Department of Clinical Laboratory, The Third Hospital Of LongYan, LongYan, Fujian, China.

出版信息

Front Psychiatry. 2025 Jun 16;16:1594074. doi: 10.3389/fpsyt.2025.1594074. eCollection 2025.

Abstract

OBJECTIVE

To understand the global trends in depression and identify potential early risk factors for its detection.

METHODS

This study is the first to integrate the 2021 Global Burden of Disease (GBD) data with machine learning techniques to explore the risk factors of adolescent depression. A machine learning-based model was constructed, and SHAP (SHapley Additive exPlanations) plots were utilized for interpretive analysis.

RESULTS

From 1990 to 2021, the incidence and disability-adjusted life years (DALYs) of depression continued to rise globally among the 10-24 age group, particularly in high socio-demographic index(SDI) regions. Greenland, the United States of America, and Palestine had the highest rates of depression globally. Among the eight machine learning models evaluated, random forest (RF) proved to be the most reliable. SHAP analysis revealed that elevated levels of S100β (0.330), NSE (0.060), and PLT (0.031) significantly increased the risk of depression.

CONCLUSION

Our study shows an increasing trend of depression in the global 10-24 age group. Additionally, elevated S100β, NSE, and PLT are identified as key risk factors for depression.

摘要

目的

了解全球抑郁症趋势,并确定其早期潜在检测风险因素。

方法

本研究首次将2021年全球疾病负担(GBD)数据与机器学习技术相结合,以探索青少年抑郁症的风险因素。构建了基于机器学习的模型,并利用SHAP(SHapley加性解释)图进行解释性分析。

结果

从1990年到2021年,全球10至24岁年龄组中抑郁症的发病率和伤残调整生命年(DALYs)持续上升,尤其是在社会人口统计学指数(SDI)较高的地区。格陵兰、美利坚合众国和巴勒斯坦的抑郁症发病率全球最高。在评估的八个机器学习模型中,随机森林(RF)被证明是最可靠的。SHAP分析显示,S100β(0.330)、NSE(0.060)和PLT(0.031)水平升高会显著增加患抑郁症的风险。

结论

我们的研究显示全球10至24岁年龄组中抑郁症呈上升趋势。此外,S100β、NSE和PLT升高被确定为抑郁症的关键风险因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c982/12206775/acacd51e92c8/fpsyt-16-1594074-g001.jpg

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