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Proteogenomic features define subtypes of mantle cell lymphoma.

Abstract

Mantle cell lymphoma (MCL) is a biologically heterogeneous B-cell malignancy. Although genomics and transcriptomics have delineated parts of the MCL disease spectrum, proteomics remains largely unexplored. Here, we conducted a comprehensive proteogenomic analysis integrating genomics, transcriptomics, and proteomics on peripheral blood samples from 27 patients with MCL and 4 healthy donors to investigate the translational and posttranslational dimensions of MCL. Our study identified 1296 downregulated and 468 upregulated proteins in MCL cells. The splicing pathways were significantly upregulated at both the mRNA and protein levels, suggesting a critical role for aberrant RNA splicing in MCL pathogenesis. Integration of proteomic data with genetic aberrations revealed immunoglobulin heavy chain variable mutational status and CCND1 mutation are associated with distinctive transcriptomic and proteomic profiles, which correspond to significant differences in clinical outcomes. A multiomics molecular stratification model incorporating proteomic data showed superior predictive power for patient survival compared with single-omics models (concordance index, 0.83 vs 0.74). This study provides, to our knowledge, the first comprehensive proteogenomic profile of MCL, offering novel insights into its molecular mechanisms and clinical behavior. The identification of molecular subtypes and prognostic protein signatures underscores the potential of proteomics to guide precision medicine strategies for MCL.

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BibTeXRIS

Yuting Yan, Weihao Chen, Xinzhou Ge, Jian Sun, Lei Yu, Krystine Garcia-Mansfield, Xinyi Zhang, Ying Yu, Wenjie Xiong, Dehui Zou, Gang An, Zhenyu Jia, Patrick Pirrotte, Jessica Jingyi Li, Zhen Yu, Mu Hao, Lugui Qiu, Jianwei Qi, Lili Wang, Shuhua Yi. 2026-05-26. Proteogenomic features define subtypes of mantle cell lymphoma.. https://doi.org/10.1182/bloodadvances.2025018701

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