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A Competing Risks Model with Binary Time Varying Covariates for Estimation of Breast Cancer Risks in BRCA1 Families
- Source :
- Statistical Methods in Medical Research
- Publication Year :
- 2020
-
Abstract
- Mammographic screening and prophylactic surgery such as risk-reducing salpingo oophorectomy can potentially reduce breast cancer risks among mutation carriers of BRCA families. The evaluation of these interventions is usually complicated by the fact that their effects on breast cancer may change over time and by the presence of competing risks. We introduce a correlated competing risks model to model breast and ovarian cancer risks within BRCA1 families that accounts for time-varying covariates. Different parametric forms for the effects of time-varying covariates are proposed for more flexibility and a correlated gamma frailty model is specified to account for the correlated competing events.We also introduce a new ascertainment correction approach that accounts for the selection of families through probands affected with either breast or ovarian cancer, or unaffected. Our simulation studies demonstrate the good performances of our proposed approach in terms of bias and precision of the estimators of model parameters and cause-specific penetrances over different levels of familial correlations. We applied our new approach to 498 BRCA1 mutation carrier families recruited through the Breast Cancer Family Registry. Our results demonstrate the importance of the functional form of the time-varying covariate effect when assessing the role of risk-reducing salpingo oophorectomy on breast cancer. In particular, under the best fitting time-varying covariate model, the overall effect of risk-reducing salpingo oophorectomy on breast cancer risk was statistically significant in women with BRCA1 mutation.
- Subjects :
- Statistics and Probability
Oncology
Time-varying covariate
Risk
FOS: Computer and information sciences
medicine.medical_specialty
endocrine system diseases
Epidemiology
Breast Neoplasms
correlated frailty model
01 natural sciences
Statistics - Applications
Methodology (stat.ME)
010104 statistics & probability
03 medical and health sciences
0302 clinical medicine
Breast cancer
Health Information Management
Internal medicine
Covariate
medicine
Humans
Genetic Predisposition to Disease
Applications (stat.AP)
0101 mathematics
time-varying covariate
penetrance
skin and connective tissue diseases
Breast and ovarian cancers
Statistics - Methodology
Genetic testing
competing risks
Ovarian Neoplasms
BRCA families
medicine.diagnostic_test
BRCA1 Protein
Cancer
Articles
medicine.disease
Prophylactic Surgery
Penetrance
030220 oncology & carcinogenesis
Mutation
Female
Ovarian cancer
risk-reducing salpingo oophorectomy
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Statistical Methods in Medical Research
- Accession number :
- edsair.doi.dedup.....e1a88cdf9427981f613e576e7b5653d9