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Development of a Prediction Model for Delirium in Hospitalized Patients with Advanced Cancer

Authors
 Eun Hee Jung  ;  Shin Hye Yoo  ;  Si Won Lee  ;  Beodeul Kang  ;  Yu Jung Kim 
Citation
 CANCER RESEARCH AND TREATMENT, Vol.56(4) : 1277-1287, 2024-10 
Journal Title
CANCER RESEARCH AND TREATMENT
ISSN
 1598-2998 
Issue Date
2024-10
MeSH
Aged ; Delirium* / diagnosis ; Delirium* / epidemiology ; Delirium* / etiology ; Female ; Hospitalization* ; Humans ; Male ; Middle Aged ; Neoplasms* / complications ; Republic of Korea / epidemiology ; Retrospective Studies ; Risk Factors
Keywords
Delirium ; Neoplasms ; Palliative care ; Predictive model
Abstract
Purpose: Delirium is a common neurocognitive disorder in patients with advanced cancer and is associated with poor clinical outcomes. As a potentially reversible phenomenon, early recognition of delirium by identifying the risk factors demands attention. We aimed to develop a model to predict the occurrence of delirium in hospitalized patients with advanced cancer.

Materials and methods: This retrospective study included patients with advanced cancer admitted to the oncology ward of four tertiary cancer centers in Korea for supportive cares and excluded those discharged due to death. The primary endpoint was occurrence of delirium. Sociodemographic characteristics, clinical characteristics, laboratory findings, and concomitant medication were investigated for associating variables. The predictive model developed using multivariate logistic regression was internally validated by bootstrapping.

Results: From January 2019 to December 2020, 2,152 patients were enrolled. The median age of patients was 64 years, and 58.4% were male. A total of 127 patients (5.9%) developed delirium during hospitalization. In multivariate logistic regression, age, body mass index, hearing impairment, previous delirium history, length of hospitalization, chemotherapy during hospitalization, blood urea nitrogen and calcium levels, and concomitant antidepressant use were significantly associated with the occurrence of delirium. The predictive model combining all four categorized variables showed the best performance among the developed models (area under the curve 0.831, sensitivity 80.3%, and specificity 72.0%). The calibration plot showed optimal agreement between predicted and actual probabilities through internal validation of the final model.

Conclusion: We proposed a successful predictive model for the risk of delirium in hospitalized patients with advanced cancer.
Files in This Item:
T202407195.pdf Download
DOI
10.4143/crt.2023.1243
Appears in Collections:
6. Others (기타) > Palliative Care Center (완화의료센터) > 1. Journal Papers
Yonsei Authors
Lee, Si Won(이시원) ORCID logo https://orcid.org/0000-0002-2144-4298
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/201511
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