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Clinical predictors of mortality in systemic sclerosis (SSc) are diversely reported due to different healthcare conditions and populations. A simple predictive model for early mortality among patients with SSc is needed as a precise referral tool for general practitioners. We aimed to develop and validate a simple predictive model for predicting mortality among patients with SSc. Prognostic research with a historical cohort study design was conducted between January 1, 2013, and December 31, 2020, in adult SSc patients attending the Scleroderma Clinic at a university hospital in Thailand. The data were extracted from the Scleroderma Registry Database. Early mortality was defined as dying within 5 years after the onset of SSc. Deep learning algorithms with Adam optimizer and different machine learning algorithms (including Logistic Regression, Decision tree, AdaBoost, Random Forest, Gradient Boosting, XGBoost, and Autoencoder neural network) were used to classify SSc mortality. In addition, the model's performance was evaluated using the area under the receiver operating characteristic curve (auROC) and its 95% confidence interval (CI) and values in the confusion matrix. The predictive model development included 528 SSc patients, 343 (65.0%) were females and 374 (70.8%) had dcSSc. Ninety-five died within 5 years after disease onset. The final 2 models with the highest predictive performance comprise the modified Rodnan skin score (mRSS) and the WHO-FC ≥ II for Model 1 and mRSS and WHO-FC ≥ III for Model 2. Model 1 provided the highest predictive performance, followed by Model 2. After internal validation, the accuracy and auROC were good. The specificity was high in Models 1 and 2 (84.8%, 89.8%, and 98.8% in model 1 vs. 84.8%, 85.6%, and 98.8% in model 2). This simplified machine learning model for predicting early mortality among patients with SSc could guide early referrals to specialists and help rheumatologists with close monitoring and management planning. External validation across multi-SSc clinics should be considered for further study.
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http://dx.doi.org/10.1038/s41598-022-22161-9 | DOI Listing |
BMC Infect Dis
September 2025
Department of Laboratory Medicine, Affiliated Hospital of Medical School, Nanjing Drum Tower Hospital, Nanjing University, Nanjing, China.
Background: Serratia marcescens is an opportunistic pathogen increasingly associated with healthcare-associated infections and rising antimicrobial resistance. The emergence of multidrug-resistant (MDR) and carbapenem-resistant S. marcescens (CRSM) presents significant therapeutic challenges.
View Article and Find Full Text PDFClin Lung Cancer
August 2025
Centre de Recherche de l'Institut Universitaire de Cardiologie et de Pneumologie de Québec, Québec City, Québec, Canada.; Department of Medicine, Université Laval, Québec City, Québec, Canada.; Pulmonary Hypertension Research Group, Québec, Canada.. Electronic address: steeve.provencher@criuc
Introduction: Recent advances in cancer management may have transformed the overall prognosis of patients undergoing lung cancer resection. This study aimed to assess the changes in the long-term survival of patients undergoing surgery for lung cancer over the last 2 decades and to identify the risk factors modulating the postoperative prognosis.
Methods: This single-center retrospective study included nonsmall cell lung cancer patients who underwent lung resection between 2008 and 2020.
Clin Lymphoma Myeloma Leuk
August 2025
HBS Medical and Dental College, Islamabad Pakistan.
J Natl Cancer Inst
September 2025
Department of Otolaryngology-Head and Neck Surgery, Harvard Medical School, Boston, Massachusetts, USA.
Purpose: Early detection of HPV-associated oropharyngeal cancer (HPV+OPSCC), the most common HPV cancer in the United States, could reduce disease-related morbidity and mortality, yet currently, there are no early detection tests. Circulating tumor HPV DNA (ctHPVDNA) is a sensitive and specific biomarker for HPV+OPSCC at diagnosis. It is unknown if ctHPVDNA is detectable prior to diagnosis, and thus it's potential as an early detection test.
View Article and Find Full Text PDFObjectives: Cervical cancer is a serious threat to women's life and health and has a high mortality rate. Colposcopy is an important method for early clinical cervical cancer screening, but the traditional vaginal dilator has problems such as discomfort in use and cumbersome operation. For this reason, this study aims to design an intelligent vaginal dilatation system to automate colposcopy and enhance patient comfort.
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