Two subtypes of schizophrenia identified by an individual-level atypical pattern of tensor-based morphometric measurement

Author:

Shi Weiyang12324,Fan Lingzhong1232452,Wang Haiyan1232,Liu Bing67ORCID,Li Wen12324,Li Jin1232,Cheng Luqi12328,Chu Congying1232,Song Ming12324,Sui Jing6,Luo Na1232,Cui Yue12324ORCID,Dong Zhenwei12324,Lu Yuheng12324,Ma Yawei12329,Ma Liang12324,Li Kaixin1232,Chen Jun10,Chen Yunchun1112,Guo Hua13,Li Peng141516,Lu Lin141516,Lv Luxian171819,Wan Ping13,Wang Huaning1112,Wang Huiling1020,Yan Hao141516ORCID,Yan Jun141516,Yang Yongfeng171819,Zhang Hongxing17181921,Zhang Dai14151622,Jiang Tianzi12324522324

Affiliation:

1. Brainnetome Center , Institute of Automation, , Beijing 100190, China

2. Chinese Academy of Sciences , Institute of Automation, , Beijing 100190, China

3. National Laboratory of Pattern Recognition , Institute of Automation, , Beijing 100190, China

4. School of Artificial Intelligence, University of Chinese Academy of Sciences , Beijing 100049, China

5. Center for Excellence in Brain Science and Intelligence Technology , Institute of Automation, , Beijing 100190, China

6. State Key Laboratory of Cognitive Neuroscience and Learning, Beijing Normal University , Beijing 100875, China

7. Chinese Institute for Brain Research , Beijing 102206, China

8. School of Life and Environmental Sciences, Guilin University of Electronic Technology , Guilin 541004, China

9. Sino-Danish College, University of Chinese Academy of Sciences , Beijing 100049, China

10. Department of Radiology, Renmin Hospital of Wuhan University , Wuhan 430060, China

11. Department of Psychiatry , Xijing Hospital, , Xi’an 710032, China

12. The Fourth Military Medical University , Xijing Hospital, , Xi’an 710032, China

13. Zhumadian Psychiatric Hospital , Zhumadian 463000, China

14. Peking University Sixth Hospital, Peking University Institute of Mental Health , Beijing 100191, China

15. Key Laboratory of Mental Health , Ministry of Health, National Clinical Research Center for Mental Disorders, , Beijing 100191, China

16. Peking University , Ministry of Health, National Clinical Research Center for Mental Disorders, , Beijing 100191, China

17. Department of Psychiatry , Henan Mental Hospital, , Xinxiang 453002, China

18. The Second Affiliated Hospital of Xinxiang Medical University , Henan Mental Hospital, , Xinxiang 453002, China

19. Henan Key Lab of Biological Psychiatry of Xinxiang Medical University, International Joint Research Laboratory for Psychiatry and Neuroscience of Henan , Xinxiang 453002, China

20. Department of Psychiatry, Renmin Hospital of Wuhan University , Wuhan 430060, China

21. Department of Psychology, Xinxiang Medical University , Xinxiang 453002, China

22. Center for Life Sciences/PKU-IDG/McGovern Institute for Brain Research, Peking University , Beijing 100191, China

23. Research Center for Augmented Intelligence, Zhejiang Lab , Hangzhou 311100, China

24. Innovation Academy for Artificial Intelligence, Chinese Academy of Sciences , Beijing 100190, China

Abstract

Abstract Difficulties in parsing the multiaspect heterogeneity of schizophrenia (SCZ) based on current nosology highlight the need to subtype SCZ using objective biomarkers. Here, utilizing a large-scale multisite SCZ dataset, we identified and validated 2 neuroanatomical subtypes with individual-level abnormal patterns of the tensor-based morphometric measurement. Remarkably, compared with subtype 1, which showed moderate deficits of some subcortical nuclei and an enlarged striatum and cerebellum, subtype 2, which showed cerebellar atrophy and more severe subcortical nuclei atrophy, had a higher subscale score of negative symptoms, which is considered to be a core aspect of SCZ and is associated with functional outcome. Moreover, with the neuroimaging–clinic association analysis, we explored the detailed relationship between the heterogeneity of clinical symptoms and the heterogeneous abnormal neuroanatomical patterns with respect to the 2 subtypes. And the neuroimaging–transcription association analysis highlighted several potential heterogeneous biological factors that may underlie the subtypes. Our work provided an effective framework for investigating the heterogeneity of SCZ from multilevel aspects and may provide new insights for precision psychiatry.

Funder

Open Research Fund of the State Key Laboratory of Cognitive Neuroscience and Learning

National Key Research and Development Program of China

Science Frontier Program of the Chinese Academy of Sciences

National Natural Science Foundation of China

Chinese Academy of Sciences, Science and Technology Service Network Initiative

Publisher

Oxford University Press (OUP)

Subject

Cellular and Molecular Neuroscience,Cognitive Neuroscience

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