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Canine Olfaction Combined With Bayesian Modeling for Multicancer Detection From Breath Samples: A Phase II Study in India

医学 接收机工作特性 贝叶斯概率 嗅觉 癌症 人口 急诊分诊台 人工智能 队列 灵敏度(控制系统) 癌症检测 前瞻性队列研究 金标准(测试) 队列研究 贝叶斯网络 内科学 诊断试验 曲线下面积 试验预测值 机器学习 病理 多中心研究
作者
Sanjeev Kulgod,BasavarajR Patil,Shashidhar Kallappa,Rakesh Ramesh,K. S. Kulkarni,S. P. Somashekhar,Swaratika Majumdar,Akshita Singh,Claire Guest,Rob Harris,Ido Aviram,Sahana Shanbhag,Achin Parashar,Sree Subha Ramaswamy,Itamar Bitan,Akash Kulgod
出处
期刊:Journal of Clinical Oncology [Lippincott Williams & Wilkins]
卷期号:44 (19): 1774-1783 被引量:1
标识
DOI:10.1200/jco-25-02310
摘要

PURPOSE: Low-cost, acceptable, high-sensitivity triage tests are needed to address low cancer prevalence in population screening, particularly in low- and middle-income countries. Breath-based canine olfaction may serve this role, but evidence, to date, has been limited to small, single-cancer studies, largely from high-income settings. We evaluated the analytical validity of a multicancer breath detection system using trained dogs integrated with Bayesian fusion modeling. METHODS: We conducted an assessor-masked, multicenter case-control study across six hospitals in Karnataka, India (CTRI/2024/10/075938). A total of 3,275 participants were enrolled (1,773 training; 1,502 testing). The test cohort included 283 treatment-naïve, biopsy-confirmed cancer cases spanning seven major cancer groups and 1,219 controls (healthy volunteers, nononcologic chronic disease, or benign biopsy). Breath was collected using cotton surgical masks, stored under -20°C cold-chain conditions, and evaluated by trained detection dogs. Individual dog indications were integrated using a Bayesian fusion framework incorporating historical dog performance and participant-level covariates. RESULTS: The fusion system achieved 90.8% sensitivity (95% CI, 87.2 to 94.5) and 91.3% specificity (95% CI, 89.7 to 92.9), with a receiver operating characteristic AUC of 0.962 (95% CI, 0.952 to 0.969). The sensitivity for early-stage disease (stage I to II) was 90.6% and remained consistent across major cancer types. CONCLUSION: In a 1,502-participant test cohort, canine olfaction combined with Bayesian fusion demonstrated high analytical accuracy for multicancer detection from breath. These findings establish analytical validity and support prospective evaluation in true screening populations.
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