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Purpose: Although renal failure is a major healthcare burden globally and the cornerstone for preventing its irreversible progression is an early diagnosis, an adequate and noninvasive tool to screen renal impairment (RI) reliably and economically does not exist. We developed an interpretable deep learning model (DLM) using electrocardiography (ECG) and validated its performance.
Methods: This retrospective cohort study included two hospitals. We included 115,361 patients who had at least one ECG taken with an estimated glomerular filtration rate measurement within 30 min of the index ECG. A DLM was developed using 96,549 ECGs of 55,222 patients. The internal validation included 22,949 ECGs of 22,949 patients. Furthermore, we conducted an external validation with 37,190 ECGs of 37,190 patients from another hospital. The endpoint was to detect a moderate to severe RI (estimated glomerular filtration rate < 45 ml/min/1.73m).
Results: The area under the receiver operating characteristic curve (AUC) of a DLM using a 12-lead ECG for detecting RI during the internal and external validation was 0.858 (95% confidence interval 0.851-0.866) and 0.906 (0.900-0.912), respectively. In the initial evaluation of 25,536 individuals without RI patients whose DLM was defined as having a higher risk had a significantly higher chance of developing RI than those in the low-risk group (17.2% vs. 2.4%, p < 0.001). The sensitivity map indicated that the DLM focused on the QRS complex and T-wave for detecting RI.
Conclusion: The DLM demonstrated high performance for RI detection and prediction using 12-, 6-, single-lead ECGs.
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http://dx.doi.org/10.1007/s11255-022-03165-w | DOI Listing |
Arq Bras Cardiol
September 2025
Escola Bahiana de Medicina e Saúde Pública, Salvador, BA - Brasil.
Background: Chronic kidney disease (CKD) is associated with a higher prevalence of valvular diseases and increased mortality from cardiovascular causes. Factors that influence the genesis of cardiac valve calcification (CVC) in these patients are not well-defined.
Objective: To determine the risk factors for valvular calcification in patients with CKD.
J Robot Surg
September 2025
Department of Urology/School of Clinical Medicine, North Sichuan Medical College/Affiliated Hospital of North Sichuan Medical College, No. 1, South Maoyuan Road, Shunqing District, Nanchong City, 63700, Sichuan Province, China.
Renal transplantation is the best option for end-stage renal disease, and in this study, patients who underwent robotic-assisted renal transplantation (RAKT) and open renal transplantation (OKT) were selected to compare their intraoperative and postoperative clinical outcomes: including Operation Time, Length of Stay, WIT (warm ischaemia time), CIT (cold ischaemia time), Estimated Blood Loss, Post 1 month Creatinine, Incision Length, Rewarming Time, Wound infection. The study was registered in PROSPERO with CRD code: CRD420251061084. We searched in Web of Science, Pubmed, Wiely, Elsevier databases, screened according to inclusion and exclusion criteria and finally included 7 papers.
View Article and Find Full Text PDFPediatr Transplant
November 2025
Division of Urology, University of Toronto, Toronto, Canada.
Introduction: Differentiating acute tubular necrosis (ATN) from rejection in pediatric kidney transplant (KT) recipients remains challenging and necessitates invasive biopsy. Doppler ultrasound-derived resistive index (RI) is a noninvasive modality to assess graft status, but its diagnostic utility in children is unclear. This study evaluates RI's ability to distinguish ATN and rejection in KT.
View Article and Find Full Text PDFClin Kidney J
September 2025
Service Nephrologie Dialyse Apherese, Hopitale Universitaire de Nimes, France.
Background: The Kidney Failure Risk Equation (KFRE) is a prognostic score for predicting kidney replacement therapy (KRT) at 5 years in patients with chronic kidney disease (CKD). Some studies show that the score performs poorly for certain etiologies of CKD but not all have been evaluated. The aim of this study was to evaluate the performance of the KFRE score according to the etiology of the CKD.
View Article and Find Full Text PDFFront Public Health
September 2025
Department of Nephrology and Institute of Nephrology, Sichuan Provincial People's Hospital, School of Medicine, University of Electronic Science and Technology of China, Chengdu, China.
Background: Chronic kidney disease (CKD), a global health challenge, is closely linked to renal fibrosis progression. Copper, an essential trace element, influences cellular functions, yet its role in CKD-related fibrosis remains unclear. This study explores the causal relationship between serum copper levels and renal fibrosis in CKD.
View Article and Find Full Text PDF