Rationale And Objectives: Surgery in combination with chemo/radiotherapy is the standard treatment for locally advanced esophageal cancer. Even after the introduction of minimally invasive techniques, esophagectomy carries significant morbidity and mortality. One of the most common and feared complications of esophagectomy is anastomotic leakage (AL). Our work aimed to develop a multimodal machine-learning model combining CT-derived and clinical data for predicting AL following esophagectomy for esophageal cancer.
Material And Methods: A total of 471 patients were prospectively included (Jan 2010-Dec 2022). Preoperative computed tomography (CT) was used to evaluate celia trunk stenosis and vessel calcification. Clinical variables, including demographics, disease stage, operation details, postoperative CRP, and stage, were combined with CT data to build a model for AL prediction. Data was split into 80%:20% for training and testing, and an XGBoost model was developed with 10-fold cross-validation and early stopping. ROC curves and respective areas under the curve (AUC), sensitivity, specificity, PPV, NPV, and F1-scores were calculated.
Results: A total of 117 patients (24.8%) exhibited post-operative AL. The XGboost model achieved an AUC of 79.2% (95%CI 69%-89.4%) with a specificity of 77.46%, a sensitivity of 65.22%, PPV of 48.39%, NPV of 87.3%, and F1-score of 56%. Shapley Additive exPlanation analysis showed the effect of individual variables on the result of the model. Decision curve analysis showed that the model was particularly beneficial for threshold probabilities between 15% and 48%.
Conclusion: A clinically relevant multimodal model can predict AL, which is especially valuable in cases with low clinical probability of AL.
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http://dx.doi.org/10.1016/j.acra.2024.06.026 | DOI Listing |
J Pediatr Surg
December 2024
Department of Neonatal Surgery, Children's Hospital of Chongqing Medical University, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development, Chongqing Key Laboratory of Structural Birth Defect and Reconstruction, Chongqing, PR China. Electronic address:
Objectives: This study sought to assess the advantages of utilizing the single-incision laparoscopic surgery (SILS) procedure for repairing neonatal congenital duodenal obstruction (CDO) in terms of clinical outcomes and complication rates.
Methods: In a retrospective cohort study conducted at a single center, neonates with CDO who underwent SILS were compared to those who underwent conventional laparoscopic surgery (CLS) between January 2018 and December 2022. The demographic and operative characteristics of CDO patients who underwent SILS or CLS were analyzed, including conversion rates and postoperative complications.
Colorectal Dis
January 2025
Department of Faculty Surgery No. 2, I. M. Sechenov First Moscow State Medical University (Sechenov University), Moscow, Russia.
Aim: Natural orifice specimen extraction surgery (NOSES) has gained significant importance in treating cancers. The current study is a meta-analysis that aimed to assess the short-term efficacy and long-term prognostic impact of NOSES and conventional laparoscopic (CL) surgery in the treatment of colorectal cancer (CRC).
Method: Published reports in several medical databases up to February 2024 were searched and information pertinent to outcomes of NOSES and CL in retrospective and randomized studies to treat CRC was collected.
Colorectal Dis
January 2025
Department of Colorectal Surgery, Kansai Medical University, Osaka, Japan.
Abdom Radiol (NY)
January 2025
University of Virginia, Charlottesville, USA.
Colorectal Dis
January 2025
Colorectal Surgery Unit, General Surgery Department, Marqués de Valdecilla University Hospital, Santander, Spain.
Aim: Complete mesocolic excision (CME) is an oncologically driven technique for treating right colon cancer. While laparoscopic CME is technically demanding and has been associated with more complications, the robotic approach might reduce morbidity. The aim of this study was to assess the safety of stepwise implementation of robotic CME.
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