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March 29, 2026Journal of Clinical Oncology4 citations

Molecular-Based Ecosystem to Improve Personalized Medicine in Chronic Myelomonocytic Leukemia

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LLLuca LaninoAHAnthony M. HunterNGNico Gagelmann

Key Points

  • This research aims to incorporate genomic features into the clinical decision-making process for chronic myelomonocytic leukemia (CMML).
  • Analyzed a retrospective cohort of 3013 and a prospective population of 516 CMML patients.
  • Developed molecular-based disease taxonomy and prognostic models using multimodal data analysis.
  • Integrated molecular and clinical data to create the international CMML Prognostic Scoring System (iCPSS).
  • Identified nine genomic entities with distinct features associated with outcomes (P < .001).
  • The iCPSS classified patients into five groups based on survival probabilities, outperforming existing models (P < .001).
  • 55% of patients were reassigned to different risk groups by the iCPSS, impacting treatment decisions.

Abstract

PURPOSE Chronic myelomonocytic leukemia (CMML) is a rare myeloid neoplasm characterized by clinical heterogeneity and is associated with poor outcomes. To date, limited molecular information has been incorporated into disease classification and risk stratification. We aimed to integrate genomic features into the clinical decision-making process for CMML. PATIENTS AND METHODS We analyzed a retrospective cohort of 3013 patients with CMML (training set) and a prospective population of 516 patients (validation set). Using an innovative framework for multimodal data analysis, we developed molecular-based disease taxonomy and prognostication. RESULTS Unsupervised clustering identified nine entities with distinct genomic features and outcomes ( P < .001), including splicing machinery, transcription factors, signal transduction and tyrosine kinase pathways aberrations, and high-risk molecular signatures. Notably, 15% of patients showed molecular/clinical overlap with other myeloid neoplasms. We integrated molecular and clinical information to build the international CMML Prognostic Scoring System (iCPSS), incorporating mutations in nine genes together with hematologic parameters and cytogenetic abnormalities. The iCPSS identified five groups with distinct probability of overall and leukemia-free survival in both training and validation cohorts ( P < .001), outperforming existing prognostic models. Importantly, 55% of patients were reassigned to higher or lower risk groups by the iCPSS. Decision analysis demonstrated that iCPSS could refine the optimal timing of allogeneic transplantation at the individual level; compared with conventional prognostic tools, iCPSS-based decision modeling changed transplantation strategy in 31% of cases, resulting in a significant gain-in-life expectancy for eligible patient population ( P < .001). A federated learning platform was implemented to enable continuous, privacy-preserving model update across multiple centers. CONCLUSION Molecular information improves CMML classification and prognostication, supports more effective clinical decision making, and potentially refines the design of clinical trials.

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Cite This Study

Lanino et al. (2026) studied this question.

synapsesocial.com/papers/69c8c2b8de0f0f753b39d199https://doi.org/10.1200/jco-25-02116
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