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◆ Journal of oncology pharmacy practice : official publication of the International Society of Oncology Pharmacy Practitioners2026-09-01

CAR-T cell therapy in advanced practice nursing management. A Statistical and Large Language Model approach to highlight critical issues.

Elsa Vitale, Luana Conte, Giuliana Nepoti, Camilla Munaretto, Giorgio De Nunzio, Anna Vaccaro

原始摘要(英文原文)· Original abstract
AimTo gather nurses' perceptions nursing hematologic management on patients undergoing CAR-T cell therapy. A combined approach using statistical analysis and Large Language Model for open-ended questionnaire processing (LLMs) was adopted to analyze and interpret open-ended questionnaire responses, focusing on the critical issues in managing patients' post-CAR T-cell therapy infusion.DesignObservational questionnaire-based survey study.MethodsWe analyzed data through descriptive statistical methods and used generative artificial intelligence to summarize four open-ended answers.ResultsA total of 89 Italian oncology nurses participated in the present study. The semiautomatic analysis of the open-ended responses, using a procedure based on a freely available large language model, allowed us to identify and summarize the main concerns expressed by the professionals regarding the critical issues in managing post-CAR T-cell infusion patients.ConclusionsAddressing the highlighted issues through targeted improvements in staffing, training, and resource allocation could significantly enhance patient outcomes and care quality.
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CAR-T cell therapy in advanced practice nursing management. A Statistical and Large Language Model approach to highlight critical issues. — 科研速览 Science Skim