Literature DB >> 33536460

Risk factors analysis of COVID-19 patients with ARDS and prediction based on machine learning.

Wan Xu1, Nan-Nan Sun2, Hai-Nv Gao3, Zhi-Yuan Chen2, Ya Yang4, Bin Ju5, Ling-Ling Tang6.   

Abstract

COVID-19 is a newly emerging infectious disease, which is generally susceptible to human beings and has caused huge losses to people's health. Acute respiratory distress syndrome (ARDS) is one of the common clinical manifestations of severe COVID-19 and it is also responsible for the current shortage of ventilators worldwide. This study aims to analyze the clinical characteristics of COVID-19 ARDS patients and establish a diagnostic system based on artificial intelligence (AI) method to predict the probability of ARDS in COVID-19 patients. We collected clinical data of 659 COVID-19 patients from 11 regions in China. The clinical characteristics of the ARDS group and no-ARDS group of COVID-19 patients were elaborately compared and both traditional machine learning algorithms and deep learning-based method were used to build the prediction models. Results indicated that the median age of ARDS patients was 56.5 years old, which was significantly older than those with non-ARDS by 7.5 years. Male and patients with BMI > 25 were more likely to develop ARDS. The clinical features of ARDS patients included cough (80.3%), polypnea (59.2%), lung consolidation (53.9%), secondary bacterial infection (30.3%), and comorbidities such as hypertension (48.7%). Abnormal biochemical indicators such as lymphocyte count, CK, NLR, AST, LDH, and CRP were all strongly related to the aggravation of ARDS. Furthermore, through various AI methods for modeling and prediction effect evaluation based on the above risk factors, decision tree achieved the best AUC, accuracy, sensitivity and specificity in identifying the mild patients who were easy to develop ARDS, which undoubtedly helped to deliver proper care and optimize use of limited resources.

Entities:  

Year:  2021        PMID: 33536460     DOI: 10.1038/s41598-021-82492-x

Source DB:  PubMed          Journal:  Sci Rep        ISSN: 2045-2322            Impact factor:   4.379


  14 in total

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Journal:  Acta Med Okayama       Date:  2018-12       Impact factor: 0.892

2.  High eosinophil counts predict decline in FEV1: results from the CanCOLD study.

Authors:  Wan C Tan; Jean Bourbeau; Gilbert Nadeau; Wendy Wang; Neil Barnes; Sarah H Landis; Miranda Kirby; James C Hogg; Don D Sin
Journal:  Eur Respir J       Date:  2021-05-27       Impact factor: 16.671

3.  Development and Validation of a Clinical Risk Score to Predict the Occurrence of Critical Illness in Hospitalized Patients With COVID-19.

Authors:  Wenhua Liang; Hengrui Liang; Limin Ou; Binfeng Chen; Ailan Chen; Caichen Li; Yimin Li; Weijie Guan; Ling Sang; Jiatao Lu; Yuanda Xu; Guoqiang Chen; Haiyan Guo; Jun Guo; Zisheng Chen; Yi Zhao; Shiyue Li; Nuofu Zhang; Nanshan Zhong; Jianxing He
Journal:  JAMA Intern Med       Date:  2020-08-01       Impact factor: 21.873

Review 4.  Molecular pathogenesis of secondary bacterial infection associated to viral infections including SARS-CoV-2.

Authors:  Sounik Manna; Piyush Baindara; Santi M Mandal
Journal:  J Infect Public Health       Date:  2020-07-14       Impact factor: 3.718

5.  An Early Warning Score to predict ICU admission in COVID-19 positive patients.

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6.  Targeting Nestin+ hepatic stellate cells ameliorates liver fibrosis by facilitating TβRI degradation.

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Journal:  J Hepatol       Date:  2020-11-17       Impact factor: 25.083

7.  COPD-associated miR-145-5p is downregulated in early-decline FEV1 trajectories in childhood asthma.

Authors:  Anshul Tiwari; Jiang Li; Alvin T Kho; Maoyun Sun; Quan Lu; Scott T Weiss; Kelan G Tantisira; Michael J McGeachie
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Review 8.  Bacterial co-infections with SARS-CoV-2.

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Journal:  IUBMB Life       Date:  2020-08-08       Impact factor: 4.709

9.  Differentiation of COVID-19 from seasonal influenza: A multicenter comparative study.

Authors:  Jianguo Zhang; Daoyin Ding; Xing Huang; Jinhui Zhang; Deyu Chen; Peiwen Fu; Yinghong Shi; Wenrong Xu; Zhimin Tao
Journal:  J Med Virol       Date:  2020-09-30       Impact factor: 20.693

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  26 in total

1.  Development of a Prediction Model for COVID-19 Acute Respiratory Distress Syndrome in Patients With Rheumatic Diseases: Results From the Global Rheumatology Alliance Registry.

Authors:  Zara Izadi; Milena A Gianfrancesco; Alfredo Aguirre; Anja Strangfeld; Elsa F Mateus; Kimme L Hyrich; Laure Gossec; Loreto Carmona; Saskia Lawson-Tovey; Lianne Kearsley-Fleet; Martin Schaefer; Andrea M Seet; Gabriela Schmajuk; Lindsay Jacobsohn; Patricia Katz; Stephanie Rush; Samar Al-Emadi; Jeffrey A Sparks; Tiffany Y-T Hsu; Naomi J Patel; Leanna Wise; Emily Gilbert; Alí Duarte-García; Maria O Valenzuela-Almada; Manuel F Ugarte-Gil; Sandra Lúcia Euzébio Ribeiro; Adriana de Oliveira Marinho; Lilian David de Azevedo Valadares; Daniela Di Giuseppe; Rebecca Hasseli; Jutta G Richter; Alexander Pfeil; Tim Schmeiser; Carolina A Isnardi; Alvaro A Reyes Torres; Gelsomina Alle; Verónica Saurit; Anna Zanetti; Greta Carrara; Julien Labreuche; Thomas Barnetche; Muriel Herasse; Samira Plassart; Maria José Santos; Ana Maria Rodrigues; Philip C Robinson; Pedro M Machado; Emily Sirotich; Jean W Liew; Jonathan S Hausmann; Paul Sufka; Rebecca Grainger; Suleman Bhana; Wendy Costello; Zachary S Wallace; Jinoos Yazdany
Journal:  ACR Open Rheumatol       Date:  2022-07-22

2.  Preparing for the next pandemic via transfer learning from existing diseases with hierarchical multi-modal BERT: a study on COVID-19 outcome prediction.

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Journal:  Sci Rep       Date:  2022-06-24       Impact factor: 4.996

Review 3.  The COVID-19 epidemic analysis and diagnosis using deep learning: A systematic literature review and future directions.

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4.  Prevalence and outcomes of co-infection and superinfection with SARS-CoV-2 and other pathogens: A systematic review and meta-analysis.

Authors:  Jackson S Musuuza; Lauren Watson; Vishala Parmasad; Nathan Putman-Buehler; Leslie Christensen; Nasia Safdar
Journal:  PLoS One       Date:  2021-05-06       Impact factor: 3.240

5.  Development and Validation of a Nomogram for Predicting the Risk of Coronavirus-Associated Acute Respiratory Distress Syndrome: A Retrospective Cohort Study.

Authors:  Li Zhang; Jing Xu; Xiaoling Qi; Zheying Tao; Zhitao Yang; Wei Chen; Xiaoli Wang; Tingting Pan; Yunqi Dai; Rui Tian; Yang Chen; Bin Tang; Zhaojun Liu; Ruoming Tan; Hongping Qu; Yue Yu; Jialin Liu
Journal:  Infect Drug Resist       Date:  2022-05-02       Impact factor: 4.177

6.  Machine Learning Based Clinical Decision Support System for Early COVID-19 Mortality Prediction.

Authors:  Akshaya Karthikeyan; Akshit Garg; P K Vinod; U Deva Priyakumar
Journal:  Front Public Health       Date:  2021-05-12

7.  Image and structured data analysis for prognostication of health outcomes in patients presenting to the ED during the COVID-19 pandemic.

Authors:  Liam Butler; Ibrahim Karabayir; Mohammad Samie Tootooni; Majid Afshar; Ari Goldberg; Oguz Akbilgic
Journal:  Int J Med Inform       Date:  2021-12-09       Impact factor: 4.730

8.  Cancer-Related Characteristics Associated With Invasive Mechanical Ventilation or In-Hospital Mortality in Patients With COVID-19 Admitted to ICU: A Cohort Multicenter Study.

Authors:  Pedro Caruso; Renato Scarsi Testa; Isabel Cristina Lima Freitas; Ana Paula Agnolon Praça; Valdelis Novis Okamoto; Pauliane Vieira Santana; Ramon Teixeira Costa; Alexandre Melo Kawasaki; Renata Rego Lins Fumis; Wilber Antonio Pino Illanes; Eduardo Leite Vieira Costa; Thais Dias Midega; Thiago Domingos Correa; Fabrício Rodrigo Torres de Carvalho; Juliana Carvalho Ferreira
Journal:  Front Oncol       Date:  2021-11-30       Impact factor: 6.244

9.  Machine learning for emerging infectious disease field responses.

Authors:  Han-Yi Robert Chiu; Chun-Kai Hwang; Shey-Ying Chen; Fuh-Yuan Shih; Hsieh-Cheng Han; Chwan-Chuen King; John Reuben Gilbert; Cheng-Chung Fang; Yen-Jen Oyang
Journal:  Sci Rep       Date:  2022-01-10       Impact factor: 4.379

Review 10.  Serum CK-MB, COVID-19 severity and mortality: An updated systematic review and meta-analysis with meta-regression.

Authors:  Angelo Zinellu; Salvatore Sotgia; Alessandro G Fois; Arduino A Mangoni
Journal:  Adv Med Sci       Date:  2021-07-07       Impact factor: 3.287

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