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Multi-omics Approach of Risk Stratification for Patients With de Novo Acute Myeloid Leukemia
Sponsor: National Taiwan University Hospital
Summary
The investigators will use machine learning to identify features on bone marrow smears and select features that are related to gene mutations, gene expression, or prognosis. The investigators will then use genome-wide transcriptomic profiling to investigate gene expression that is associated with patients' outcomes. The investigators will design a next-generation sequencing panel with unique molecular index and assess its feasibility and robustness in detecting measurable residual disease and optimize the panel/platform/bioinformatic pipeline. Finally, The investigators will use machine learning to integrate bone marrow smear features, gene mutations, gene expression, and measurable residual disease to construct a comprehensive risk assessment system that is based on multi-omics data. The investigators believe that such a platform will help physicians to design the most appropriate treatment strategies for individual patients, not only advancing the concept of precision medicine but also improving patients' prognoses.
Key Details
Gender
All
Age Range
18 Years - Any
Study Type
OBSERVATIONAL
Enrollment
1500
Start Date
2023-08
Completion Date
2026-07
Last Updated
2023-08-14
Healthy Volunteers
No
Conditions
Locations (1)
National Taiwan University Hospital
Taipei, Taiwan