Identification of potential glucocorticoid receptor therapeutic targets in multiple myeloma
Alexandra L Thomas1, Cristian Coarfa1, Jun Qian1
1Northwestern University, Robert H. Lurie Comprehensive Cancer Center, Chicago, Illinois (ALT, JQ, NLK, STR); Baylor College of Medicine, Department of Molecular and Human Genetics, Houston, Texas (CC, JJW, KR); University of Houston, Department of Biology and Biochemistry, Houston, Texas (JJW, PHG) and Feinberg School of Medicine, Northwestern University, Department of Medicine, Chicago, Illinois (STR).
Abstract:
Glucocorticoids (GC) are a cornerstone of combination therapies for multiple myeloma. However, patients ultimately develop resistance to GCs frequently based on decreased glucocorticoid receptor (GR) expression. An understanding of the direct targets of GC actions, which induce cell death, is expected to culminate in potential therapeutic strategies for inducing cell death by regulating downstream targets in the absence of a functional GR. The specific goal of our research is to identify primary GR targets that contribute to GC-induced cell death, with the ultimate goal of developing novel therapeutics around these targets that can be used to overcome resistance to GCs in the absence of GR. Using the MM.1S glucocorticoid-sensitive human myeloma cell line, we began with the broad platform of gene expression profiling to identify glucocorticoid-regulated genes further refined by combination treatment with phosphatidylinositol-3'-kinase inhibition (PI3Ki). To further refine the search to distinguish direct and indirect targets of GR that respond to the combination GC and PI3Ki treatment of MM.1S cells, we integrated 1) gene expression profiles of combination GC treatment with PI3Ki, which induces synergistic cell death; 2) negative correlation between genes inhibited by combination treatment in MM.1S cells and genes over-expressed in myeloma patients to establish clinical relevance and 3) GR chromatin immunoprecipitation with massively parallel sequencing (ChIP-Seq) in myeloma cells to identify global chromatin binding for the glucocorticoid receptor (GR). Using established bioinformatics platforms, we have integrated these data sets to identify a subset of candidate genes that may form the basis for a comprehensive picture of glucocorticoid actions in multiple myeloma. As a proof of principle, we have verified two targets, namely RRM2 and BCL2L1, as primary functional targets of GR involved in GC-induced cell death.
Insights
Researchers identified key targets of glucocorticoids (GC) that cause cell death in multiple myeloma. This discovery may lead to new therapies to overcome resistance to GC treatments by targeting these specific pathways.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Glucocorticoids (GC) are vital in multiple myeloma therapy but often face resistance due to reduced glucocorticoid receptor (GR) expression.
- Understanding direct GC targets is crucial for developing strategies to induce cell death, even when GR is non-functional.
Purpose of the Study:
- To identify primary GR targets responsible for GC-induced cell death in multiple myeloma.
- To develop novel therapeutics targeting these pathways to overcome GC resistance.
Main Methods:
- Gene expression profiling of the MM.1S myeloma cell line treated with GC and PI3K inhibitor (PI3Ki).
- Integration of gene expression data, clinical relevance analysis (correlation with myeloma patient gene expression), and GR chromatin immunoprecipitation sequencing (ChIP-Seq).
- Bioinformatics analysis to identify direct GR targets involved in synergistic cell death.
Main Results:
- Identified a subset of candidate genes regulated by GR in multiple myeloma cells.
- Validated RRM2 and BCL2L1 as primary functional targets of GR mediating GC-induced cell death.
- Established a comprehensive understanding of glucocorticoid actions in multiple myeloma.
Conclusions:
- RRM2 and BCL2L1 are critical targets for GC-induced apoptosis in multiple myeloma.
- Targeting these identified pathways offers a promising strategy to overcome GC resistance.
- This research paves the way for novel therapeutic approaches in multiple myeloma treatment.
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