Machine Learning-Driven Phenogrouping and Cardiorespiratory Fitness Response in Metastatic Breast Cancer
Novo, Robert T.; Thomas, Samantha M.; Khouri, Michel G.; Alenezi, Fawaz; Herndon, James E; Michalski, Meghan; Collins, Kereshmeh; Nilsen, Tormod Skogstad; Edvardsen, Elisabeth; Jones, Lee W.; Scott, Jessica M.
Peer reviewed, Journal article
Accepted version
Date
2024Metadata
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Abstract
Purpose The magnitude of cardiorespiratory fitness (CRF) impairment during anticancer treatment and CRF response to aerobic exercise training (AT) are highly variable. The aim of this ancillary analysis was to leverage machine learning approaches to identify patients at high risk of impaired CRF and poor CRF response to AT. Methods We evaluated heterogeneity in CRF among 64 women with metastatic breast cancer randomly assigned to 12 weeks of highly structured AT (n = 33) or control (n = 31). Unsupervised hierarchical cluster analyses were used to identify representative variables from multidimensional prerandomization (baseline) data, and to categorize patients into mutually exclusive subgroups (ie, phenogroups). Logistic and linear regression evaluated the association between phenogroups and impaired CRF (ie, ≤16 mL O2·kg–1·min–1) and CRF response. Results Baseline CRF ranged from 10.2 to 38.8 mL O2·kg–1·min–1; CRF response ranged from –15.7 to 4.1 mL O2·kg–1·min–1. Of the n = 120 candidate baseline variables, n = 32 representative variables were identified. Patients were categorized into two phenogroups. Compared with phenogroup 1 (n = 27), phenogroup 2 (n = 37) contained a higher number of patients with none or >three lines of previous anticancer therapy for metastatic disease and had lower resting left ventricular systolic and diastolic function, cardiac output reserve, hematocrit, lymphocyte count, patient-reported outcomes, and CRF (P
Description
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