Development and Validation of a Nomogram for Predicting Postoperative Pulmonary Infection in Patients Undergoing Lung Surgery

列线图 医学 逻辑回归 队列 回顾性队列研究 单变量分析 多元分析 外科 肺癌 单变量 多元统计 内科学 统计 数学
作者
Jingyun Wang,Qianyun Pang,Yajun Yang,Yu-Mei Feng,Ying-ying Xiang,Ran An,Hongliang Liu
出处
期刊:Journal of Cardiothoracic and Vascular Anesthesia [Elsevier BV]
卷期号:36 (12): 4393-4402 被引量:7
标识
DOI:10.1053/j.jvca.2022.08.013
摘要

To develop and validate a nomogram for predicting postoperative pulmonary infection (PPI) in patients undergoing lung surgery.Single-center retrospective cohort analysis.A university-affiliated cancer hospital PARTICIPANTS: A total of 1,501 adult patients who underwent lung surgery from January 2018 to December 2020.Observation for PPI within 7 days after lung surgery.A complete set of demographics, preoperative variables, and postoperative follow-up data was recorded. The primary outcome was PPI; a total of 125 (8.3%) out of 1,501 patients developed PPI. The variables with p < 0.1 in univariate logistic regression were included in the multivariate regression, and multivariate logistic regression analysis showed that surgical procedure, surgical duration, the inspired fraction of oxygen in one-lung ventilation, and postoperative pain were independent risk factors for PPI. A nomogram based on these factors was constructed in the development cohort (area under the curve: 0.794, 95% CI 0.744-0.845) and validated in the validation cohort (area under the curve: 0.849, 95% CI 0.786-0.912). The calibration slope was 1 in the development and validation cohorts. Decision curve analysis indicated that when the threshold probability was within a range of 0.02-to-0.58 and 0.02-to-0.42 for the development and validation cohorts, respectively, the nomogram model could provide a clinical net benefit.The authors developed and validated a nomogram for predicting PPI in patients undergoing lung surgery. The prediction model can predict the development of PPI and identify high-risk groups.
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