Prognosis of lung cancer with simple brain metastasis patients and establishment of survival prediction models: a study based on real events

肺癌合并脑转移患者的预后及生存预测模型的建立:一项基于真实事件的研究

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Abstract

OBJECTIVES: The aim of this study was to explore risk factors for the prognosis of lung cancer with simple brain metastasis (LCSBM) patients and to establish a prognostic predictive nomogram for LCSBM patients. MATERIALS AND METHODS: Three thousand eight hundred and six cases of LCSBM were extracted from the Surveillance, Epidemiology, and End Results (SEER) database from 2010 to 2015 using SEER Stat 8.3.5. Lung cancer patients only had brain metastasis with no other organ metastasis were defined as LCSBM patients. Prognostic factors of LCSBM were analyzed with log-rank method and Cox proportional hazards model. Independent risk and protective prognostic factors were used to construct nomogram with accelerated failure time model. C-index was used to evaluate the prediction effect of nomogram. RESULTS AND CONCLUSION: The younger patients (18-65 years old) accounted for 54.41%, while patients aged over 65 accounted for 45.59%.The ratio of male: female was 1:1. Lung cancer in the main bronchus, upper lobe, middle lobe and lower lobe were accounted for 4.91%, 62.80%, 4.47% and 27.82% respectively; and adenocarcinoma accounted for 57.83% of all lung cancer types. The overall median survival time was 12.2 months. Survival rates for 1-, 3- and 5-years were 28.2%, 8.7% and 4.7% respectively. We found female (HR = 0.81, 95% CI 0.75-0.87), the married (HR = 0.80; 95% CI 0.75-0.86), the White (HR = 0.90, 95% CI 0.84-0.95) and primary site (HR = 0.45, 95% CI 0.39-0.52) were independent protective factors while higher age (HR = 1.51, 95% CI 1.40-1.62), advanced grade (HR = 1.19, 95% CI 1.12-1.25) and advanced T stage (HR = 1.09, 95% CI 1.05-1.13) were independent risk prognostic factors affecting the survival of LCSBM patients. We constructed the nomogram with above independent factors, and the C-index value was 0.634 (95% CI 0.622-0.646). We developed a nomogram with seven significant LCSBM independent prognostic factors to provide prognosis prediction.

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