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Published on: June 7, 2015
Personalised screening intensity based on existing lung cancer risk and spirometry
Patrick Goodley1,2, Hana Zahed3, Haval Balata1,2
1Division of Immunology, Immunity to Infection and Respiratory Medicine, The University of Manchester, Manchester, UK.
Personalized lung cancer screening intervals using risk models can improve cost-effectiveness by extending screening for low-risk individuals. This approach helps focus resources on high-risk patients, reducing interval cancers and screening harms.
Area of Science:
- Pulmonology
- Oncology
- Radiology
- Biostatistics
Background:
- Current lung cancer screening programs typically use fixed annual or biennial intervals.
- Risk models may inform personalized screening intervals to enhance cost-effectiveness and decrease interval cancers.
- Spirometric airflow obstruction is a potential biomarker for lung cancer risk that warrants investigation for predictive value.
Purpose of the Study:
- To evaluate the performance of existing risk models in predicting next-round risk for lung cancer screening.
- To assess whether incorporating spirometric data (FEV1 % pred) improves risk prediction and screening efficiency.
- To determine if personalized screening intervals based on risk models can optimize lung cancer screening programs.
Main Methods:
- Risk models (PLCOm2012, LCRAT+CTneg) were tested for predicting next-round risk in Manchester and National Lung Screening Trial (NLST) cohorts.
- Models were adapted in an NLST sub-study (ECOG-ACRIN) to include FEV1 % pred.
- Model performance was evaluated using discrimination metrics like Area Under the Curve (AUC).
Main Results:
- Higher risk scores correlated with increased lung cancer detection rates at the next screening interval.
- The PLCOm2012 model showed an AUC of 0.72, while LCRAT+CTneg achieved an AUC of 0.75 on external validation.
- Adding FEV1 % pred provided only a modest improvement in discrimination (ΔAUC 0.01–0.04).
Conclusions:
- Baseline risk assessment can identify lower-risk individuals for extended screening intervals, reducing costs and harms.
- Focusing resources on high-risk individuals can prevent delayed detection of lung cancer.
- FEV1 % pred is unlikely to significantly enhance next-round risk prediction in lung cancer screening.
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