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血清骨代谢生物标志物在预测肿瘤骨转移风险及其与癌痛的关联:一项回顾性研究

Serum bone metabolism biomarkers in predicting tumor bone metastasis risk and their association with cancer pain: a retrospective study.

作者信息

Zhang Sijia, Huang Kai, Zhou Tian, Wang Yao, Xu Yunqing, Tang Quan, Xiao Guangqin

机构信息

Cancer Center, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.

Institute of Radiation Oncology, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China.

出版信息

Front Pain Res (Lausanne). 2025 Mar 28;6:1514459. doi: 10.3389/fpain.2025.1514459. eCollection 2025.

Abstract

BACKGROUND

This study aims to develop a novel nomogram predictive model utilizing serum bone metabolism biomarkers to accurately predict and diagnose tumor bone metastasis. The creation of this model holds significant clinical implications, supporting the development of targeted intervention strategies, providing robust laboratory data, and guiding early patient treatment.

METHODS

A retrospective cohort study was conducted involving 266 patients treated at hospitals from September 2021 to January 2024. Patients were classified into three groups based on disease characteristics: tumor patients without bone metastasis, tumor patients with bone metastasis, and a control group consisting of individuals with neither tumor nor bone metabolism-related conditions. The primary serum bone metabolism biomarkers assessed included the N-terminal mid fragment of osteocalcin (NMID), the total N-terminal propeptide of type I procollagen (TPINP), and the C-terminal telopeptide of type I collagen β-special sequence (β-CTX). Multivariate statistical methods, including logistic regression and Cox regression, were employed for data analysis, while the nomogram model was rigorously evaluated using a variety of tools such as receiver operating characteristic (ROC) curves.

RESULTS

The study found that the levels of NMID, TPINP, and β-CTX were significantly elevated in patients with bone metastasis compared to the other groups. These biomarkers were strongly associated with the incidence of tumor bone metastasis and identified as independent risk factors for this condition. The nomogram model demonstrated exceptional predictive performance, characterized by high area under the AUC values, robust time-dependent ROC curves, accurate calibration curves, and effective decision curve analysis. Notably, a positive correlation was observed between NMID, TPINP, β-CTX, and numeric rating scale (NRS) pain scores, providing valuable biomarkers for evaluating and managing pain associated with tumor bone metastasis.

CONCLUSION

This study successfully established a nomogram predictive model based on serum bone metabolism biomarkers, with NMID, TPINP, and β-CTX emerging as critical indicators. The correlation between these biomarkers and NRS pain scores offers a novel understanding of the pain mechanisms associated with tumor bone metastasis, providing clinicians with essential reference points for diagnostic and therapeutic decision-making, thereby enhancing the practical application of the model in clinical settings.

摘要

背景

本研究旨在开发一种利用血清骨代谢生物标志物的新型列线图预测模型,以准确预测和诊断肿瘤骨转移。该模型的创建具有重要的临床意义,有助于制定靶向干预策略,提供有力的实验室数据,并指导患者早期治疗。

方法

进行了一项回顾性队列研究,纳入了2021年9月至2024年1月在医院接受治疗的266例患者。根据疾病特征将患者分为三组:无骨转移的肿瘤患者、有骨转移的肿瘤患者以及既无肿瘤也无骨代谢相关疾病的对照组。评估的主要血清骨代谢生物标志物包括骨钙素N端中段(NMID)、I型前胶原N端前肽总量(TPINP)和I型胶原β特殊序列C端肽(β-CTX)。采用逻辑回归和Cox回归等多变量统计方法进行数据分析,同时使用多种工具(如受试者操作特征曲线)对列线图模型进行严格评估。

结果

研究发现,与其他组相比,骨转移患者的NMID、TPINP和β-CTX水平显著升高。这些生物标志物与肿瘤骨转移的发生率密切相关,并被确定为该疾病的独立危险因素。列线图模型表现出卓越的预测性能,其特征为AUC值下面积高、稳健的时间依赖性ROC曲线、准确的校准曲线以及有效的决策曲线分析。值得注意的是,观察到NMID、TPINP、β-CTX与数字评分量表(NRS)疼痛评分之间存在正相关,为评估和管理与肿瘤骨转移相关的疼痛提供了有价值的生物标志物。

结论

本研究成功建立了基于血清骨代谢生物标志物的列线图预测模型,NMID、TPINP和β-CTX成为关键指标。这些生物标志物与NRS疼痛评分之间的相关性为理解与肿瘤骨转移相关的疼痛机制提供了新的视角,为临床医生进行诊断和治疗决策提供了重要参考点,从而增强了该模型在临床环境中的实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a859/11986641/f53e123f9863/fpain-06-1514459-g001.jpg

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