Predicting in-hospital outcomes of patients with acute kidney injury

被引:19
|
作者
Wu, Changwei [1 ,2 ]
Zhang, Yun [3 ]
Nie, Sheng [4 ]
Hong, Daqing [1 ,2 ]
Zhu, Jiajing [3 ]
Chen, Zhi [3 ]
Liu, Bicheng [5 ]
Liu, Huafeng [6 ]
Yang, Qiongqiong [7 ]
Li, Hua [8 ]
Xu, Gang [9 ]
Weng, Jianping [10 ]
Kong, Yaozhong [11 ]
Wan, Qijun [12 ]
Zha, Yan [13 ]
Chen, Chunbo [14 ]
Xu, Hong [15 ]
Hu, Ying [16 ]
Shi, Yongjun [17 ]
Zhou, Yilun [18 ]
Su, Guobin [19 ]
Tang, Ying [20 ]
Gong, Mengchun [21 ,22 ]
Wang, Li [1 ,2 ]
Hou, Fanfan [4 ]
Liu, Yongguo [3 ]
Li, Guisen [1 ,2 ]
机构
[1] Univ Elect Sci & Technol China, Sch Med, Sichuan Prov Peoples Hosp, Dept Nephrol, Chengdu 610072, Peoples R China
[2] Univ Elect Sci & Technol China, Sch Med, Sichuan Prov Peoples Hosp, Inst Nephrol, Chengdu 610072, Peoples R China
[3] Univ Elect Sci & Technol China, Sch Informat & Software Engn, Knowledge & Data Engn Lab Chinese Med, Chengdu 610054, Peoples R China
[4] Southern Med Univ, Dis State Lab Organ Failure Res, Div Nephrol, Natl Clin Res Ctr Kidney Dis,Nanfang Hosp, Guangzhou 510515, Peoples R China
[5] Southeast Univ, Inst Nephrol, Zhongda Hosp, Sch Med, Nanjing 210000, Peoples R China
[6] Guangdong Med Univ, Inst Nephrol, Affiliated Hosp, Key Lab Prevent & Management Chron Kidney Dis Zha, Zhanjiang 524000, Peoples R China
[7] Sun Yat Sen Univ, Sun Yat Sen Mem Hosp, Dept Nephrol, Guangzhou 510515, Peoples R China
[8] Zhejiang Univ, Sir Run Run Shaw Hosp, Sch Med, Hangzhou 310000, Peoples R China
[9] Huazhong Univ Sci & Technol, Tongji Hosp, Div Nephrol, Tongji Med Coll, Wuhan 430000, Peoples R China
[10] Univ Sci & Technol China, Affiliated Hosp USTC 1, Div Life Sci & Med, Dept Endocrinol, Hefei 230000, Peoples R China
[11] First Peoples Hosp Foshan, Dept Nephrol, Foshan 528000, Peoples R China
[12] Shenzhen Univ, Peoples Hosp Shenzhen 2, Shenzhen 518000, Peoples R China
[13] Guizhou Univ, Guizhou Prov Peoples Hosp, Guiyang 550000, Guizhou, Peoples R China
[14] Maoming Peoples Hosp, Dept Crit Care Med, Maoming 525000, Peoples R China
[15] Fudan Univ, Childrens Hosp, Shanghai 200000, Peoples R China
[16] Zhejiang Univ, Sch Med, Affiliated Hosp 2, Hangzhou 310000, Peoples R China
[17] Sun Yat Sen Univ, Huizhou Municipal Cent Hosp, Huizhou 516000, Peoples R China
[18] Capital Med Univ, Beijing Tiantan Hosp, Dept Nephrol, Beijing 100000, Peoples R China
[19] Guangzhou Univ Chinese Med, Guangdong Prov Hosp Chinese Med, Clin Coll 2, Dept Nephrol,Affiliated Hosp 2, Guangzhou 510000, Peoples R China
[20] Southern Med Univ, Affiliated Hosp 3, Guangzhou 510000, Peoples R China
[21] Southern Med Univ, Inst Hlth Management, Guangzhou 510000, Peoples R China
[22] DHC Technol, Beijing 100000, Peoples R China
基金
中国国家自然科学基金;
关键词
ARTIFICIAL-INTELLIGENCE; DECISION-SUPPORT; FUTURE; AKI;
D O I
10.1038/s41467-023-39474-6
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Acute kidney injury (AKI) is prevalent and a leading cause of in-hospital death worldwide. Early prediction of AKI-related clinical events and timely intervention for high-risk patients could improve outcomes. We develop a deep learning model based on a nationwide multicenter cooperative network across China that includes 7,084,339 hospitalized patients, to dynamically predict the risk of in-hospital death (primary outcome) and dialysis (secondary outcome) for patients who developed AKI during hospitalization. A total of 137,084 eligible patients with AKI constitute the analysis set. In the derivation cohort, the area under the receiver operator curve (AUROC) for 24-h, 48-h, 72-h, and 7-day death are 95 center dot 05%, 94 center dot 23%, 93 center dot 53%, and 93 center dot 09%, respectively. For dialysis outcome, the AUROC of each time span are 88 center dot 32%, 83 center dot 31%, 83 center dot 20%, and 77 center dot 99%, respectively. The predictive performance is consistent in both internal and external validation cohorts. The model can predict important outcomes of patients with AKI, which could be helpful for the early management of AKI.
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页数:9
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