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Multi-omics dataset to decipher the complexity of drug resistance in diffuse large B-cell lymphoma
Luc-Matthieu Fornecker1,2,3,4, Leslie Muller5, Frédéric Bertrand6
1Pôle d'Oncologie et d'Hématologie, Hôpitaux Universitaires de Strasbourg, Strasbourg, France. luc-matthieu.fornecker@chru-strasbourg.fr.
Abstract:
The prognosis of patients with relapsed/refractory (R/R) diffuse large B-cell lymphoma (DLBCL) remains unsatisfactory and, despite major advances in genomic studies, the biological mechanisms underlying chemoresistance are still poorly understood. We conducted for the first time a large-scale differential multi-omics investigation on DLBCL patient's samples in order to identify new biomarkers that could early identify patients at risk of R/R disease and to identify new targets that could determine chemorefractoriness. We compared a well-characterized cohort of R/R versus chemosensitive DLBCL patients by combining label-free quantitative proteomics and targeted RNA sequencing performed on the same tissues samples. The cross-section of both data levels allowed extracting a sub-list of 22 transcripts/proteins pairs whose expression levels significantly differed between the two groups of patients. In particular, we identified significant targets related to tumor metabolism (Hexokinase 3), microenvironment (IDO1, CXCL13), cancer cells proliferation, migration and invasion (S100 proteins) or BCR signaling pathway (CD79B). Overall, this study revealed several extremely promising biomarker candidates related to DLBCL chemorefractoriness and highlighted some new potential therapeutic drug targets. The complete datasets have been made publically available and should constitute a valuable resource for the future research.
Insights
This study identifies new biomarkers for relapsed/refractory diffuse large B-cell lymphoma (DLBCL) by comparing multi-omics data from chemoresistant versus chemosensitive patients. Findings reveal potential targets in metabolism, microenvironment, and signaling pathways for improved DLBCL treatment strategies.
Area of Science:
- Oncology
- Genomics
- Proteomics
- Systems Biology
Background:
- The prognosis for relapsed/refractory (R/R) diffuse large B-cell lymphoma (DLBCL) is poor.
- Biological mechanisms of chemoresistance in DLBCL are not fully understood.
- Genomic studies have advanced understanding, but therapeutic targets remain limited.
Purpose of the Study:
- To identify novel biomarkers for early detection of R/R DLBCL.
- To uncover new therapeutic targets for chemorefractory DLBCL.
- To investigate biological mechanisms of chemoresistance using multi-omics.
Main Methods:
- Conducted a large-scale, differential multi-omics investigation.
- Combined label-free quantitative proteomics and targeted RNA sequencing on DLBCL patient samples.
- Compared R/R DLBCL patients with chemosensitive DLBCL patients.
Main Results:
- Identified 22 transcript/protein pairs with significantly different expression levels between R/R and chemosensitive DLBCL.
- Found significant targets related to tumor metabolism (Hexokinase 3), microenvironment (IDO1, CXCL13), proliferation/migration (S100 proteins), and BCR signaling (CD79B).
- Highlighted promising biomarker candidates and potential therapeutic targets for DLBCL chemorefractoriness.
Conclusions:
- The study provides valuable insights into the molecular basis of DLBCL chemoresistance.
- Identified novel biomarkers and therapeutic targets for R/R DLBCL.
- Publicly available datasets offer a resource for future DLBCL research.
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