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Systems medicine dissection of chr1q-amp reveals a novel PBX1-FOXM1 axis for targeted therapy in multiple myeloma
Nikolaos Trasanidis1, Alexia Katsarou1,2, Kanagaraju Ponnusamy1
1Hugh and Josseline Langmuir Centre for Myeloma Research, Centre for Haematology, Department of Immunology and Inflammation, Imperial College London, London, United Kingdom.
Abstract:
Understanding the biological and clinical impact of copy number aberrations (CNAs) on the development of precision therapies in cancer remains an unmet challenge. Genetic amplification of chromosome 1q (chr1q-amp) is a major CNA conferring an adverse prognosis in several types of cancer, including in the blood cancer multiple myeloma (MM). Although several genes across chromosome 1 (chr1q) portend high-risk MM disease, the underpinning molecular etiology remains elusive. Here, with reference to the 3-dimensional (3D) chromatin structure, we integrate multi-omics data sets from patients with MM with genetic variables to obtain an associated clinical risk map across chr1q and to identify 103 adverse prognosis genes in chr1q-amp MM. Prominent among these genes, the transcription factor PBX1 is ectopically expressed by genetic amplification and epigenetic activation of its own preserved 3D regulatory domain. By binding to reprogrammed superenhancers, PBX1 directly regulates critical oncogenic pathways and a FOXM1-dependent transcriptional program. Together, PBX1 and FOXM1 activate a proliferative gene signature that predicts adverse prognosis across multiple types of cancer. Notably, pharmacological disruption of the PBX1-FOXM1 axis with existing agents (thiostrepton) and a novel PBX1 small molecule inhibitor (T417) is selectively toxic against chr1q-amp myeloma and solid tumor cells. Overall, our systems medicine approach successfully identifies CNA-driven oncogenic circuitries, links them to clinical phenotypes, and proposes novel CNA-targeted therapy strategies in MM and other types of cancer.
Insights
Genetic amplification of chromosome 1q (chr1q-amp) drives high-risk multiple myeloma (MM). Targeting the PBX1-FOXM1 axis with novel inhibitors shows promise for treating chr1q-amp cancers.
Area of Science:
- Cancer genomics
- Systems medicine
- Chromatin biology
Background:
- Copy number aberrations (CNAs) impact cancer therapy development.
- Chromosome 1q amplification (chr1q-amp) is linked to poor prognosis in multiple myeloma (MM).
- The molecular drivers of chr1q-amp MM remain unclear.
Purpose of the Study:
- To map clinical risk across chr1q in MM using multi-omics data and 3D chromatin structure.
- To identify genes associated with adverse prognosis in chr1q-amp MM.
- To investigate the role of PBX1 and its therapeutic targeting.
Main Methods:
- Integration of multi-omics data from MM patients.
- Analysis of 3D chromatin structure and genetic variables.
- Identification of adverse prognosis genes and oncogenic pathways.
- Pharmacological inhibition of the PBX1-FOXM1 axis.
Main Results:
- Identified 103 adverse prognosis genes in chr1q-amp MM.
- PBX1 is ectopically expressed and drives oncogenic pathways via FOXM1.
- PBX1 and FOXM1 activate a proliferative gene signature predicting poor outcomes.
- Targeting the PBX1-FOXM1 axis shows selective toxicity in chr1q-amp cancer cells.
Conclusions:
- A systems medicine approach successfully linked CNAs to clinical phenotypes in MM.
- PBX1 is a key oncogenic driver in chr1q-amp MM.
- Targeting the PBX1-FOXM1 axis represents a novel therapeutic strategy for chr1q-amp MM and other cancers.
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