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Symptom clusters in 1330 survivors of 7 cancer types from the PROFILES registry: A network analysis.

Belle H de Rooij ,
Simone Oerlemans ,
Katrijn van Deun ,
Floortje Mols ,
Kelly M de Ligt ,
Olga Husson ,
Nicole P M Ezendam ,
Meeke Hoedjes ,
Lonneke V van de Poll-Franse ,
Dounya Schoormans

Abstract

METHODS

This study used cross-sectional survey data, collected between 2008 and 2018, from the population-based Patient Reported Outcomes Following Initial Treatment and Long Term Evaluation of Survivorship registry, which included survivors of 7 cancer types (colorectal cancer, breast cancer, ovarian cancer, thyroid cancer, chronic lymphocytic leukemia, Hodgkin lymphoma, and non-Hodgkin lymphoma). Regularized partial correlation network analysis was used to explore and visualize the associations between self-reported symptoms (European Organisation for Research and Treatment of Cancer Quality of Life Questionnaire) and the centrality of these symptoms in the network (ie, how strongly a symptom was connected to other symptoms) for the total sample and for subgroups separately.

CONCLUSIONS

In a heterogenous sample of cancer survivors, fatigue was consistently the most central symptom in all networks. Although longitudinal data are needed to build a case for the causal nature of these symptoms, cancer survivorship rehabilitation programs could focus on fatigue to reduce the overall symptom burden.

RESULTS

In the total sample (n = 1330), fatigue was the most central symptom in the network with moderate direct relationships with emotional symptoms, cognitive symptoms, appetite loss, dyspnea, and pain. These relationships persisted after adjustments for sociodemographic and clinical characteristics. Connections between fatigue and emotional symptoms, appetite loss, dyspnea, and pain were consistently found across all cancer types (190 for each), treatment regimens, and short-term and long-term survivors.

BACKGROUND

Research into the clustering of symptoms may improve the understanding of the underlying mechanisms that affect survivors' symptom burden. This study applied network analyses in a balanced sample of cancer survivors to 1) explore the clustering of symptoms and 2) assess differences in symptom clustering between cancer types, treatment regimens, and short-term and long-term survivors.

More about this publication

Cancer

Volume 127
Issue nr. 24
Pages 4665-4674
Publication date 15-12-2021

Full text links

Publisher website (DOI) 10.1002/cncr.33852
Europe PubMed Central 34387856
Pubmed 34387856

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