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Published on: December 9, 2016
Identification of a CD138-Negative Therapy-Resistant Subpopulation in Multiple Myeloma with Vulnerability to Splicing
Takahiro Kamiya1,2, Masahiko Ajiro3, Motohiko Oshima1
1Division of Stem Cell and Molecular Medicine, Center for Stem Cell Biology and Regenerative Medicine, The Institute of Medical Science, The University of Tokyo, Tokyo, Japan.
Abstract:
The molecular basis of therapy resistance in multiple myeloma remains poorly understood. In this study, we performed single-cell RNA sequencing coupled with VDJ-targeted sequencing of highly purified primary multiple myeloma cells from patient bone marrow. This approach uncovered cellular heterogeneity and phenotypic plasticity of multiple myeloma cells across a spectrum of CD138 expression, accompanied by drastic epigenetic alterations. Notably, therapy-resistant subpopulations were identified within a minor fraction of CD138- multiple myeloma cells, which were shown via CRISPR/Cas9 screening to be vulnerable to splicing pathway inhibition. Consistently, this fraction of CD138- multiple myeloma cells showed increased differential splicing associated with overexpression of SR protein family splicing factors. Among these splicing factors, RBM39 was overexpressed in therapy-resistant cells and involved in aberrant splicing. Both genetic and pharmacologic RBM39 inhibition exhibited a significant lethal effect on multiple myeloma cells. Collectively, our findings identify distinct therapy-resistant multiple myeloma subpopulations and highlight targeting the splicing pathway as a promising therapeutic strategy.
Significance:
Single-cell RNA sequencing coupled with VDJ-targeted profiling identified distinct therapy-resistant subpopulations within the minor CD138- fraction of multiple myeloma cells. These subpopulations were characterized by increased differential splicing events associated with overexpression of splicing factors from the SR protein family, with CD138- cells showing selective vulnerability to pharmacologic targeting of the splicing factor RBM39. See related commentary by Maron and Abdel-Wahab, p. 535.
Insights
Researchers identified therapy-resistant multiple myeloma (MM) cells within a CD138- fraction. Inhibiting the splicing factor RBM39 selectively killed these resistant MM cells, revealing a new therapeutic target.
Area of Science:
- Hematology
- Molecular Biology
- Genetics
Background:
- Therapy resistance in multiple myeloma (MM) is a significant clinical challenge.
- The underlying molecular mechanisms driving MM therapy resistance are not fully understood.
Purpose of the Study:
- To investigate the cellular heterogeneity and molecular basis of therapy resistance in multiple myeloma.
- To identify novel therapeutic targets for overcoming MM treatment resistance.
Main Methods:
- Single-cell RNA sequencing and VDJ-targeted sequencing of primary MM cells.
- CRISPR/Cas9 screening to identify vulnerabilities in resistant subpopulations.
- Genetic and pharmacological inhibition of RNA-binding protein 39 (RBM39).
Main Results:
- Identified distinct therapy-resistant MM subpopulations within the CD138- fraction.
- Discovered increased differential splicing and overexpression of SR protein family splicing factors, including RBM39, in resistant cells.
- Demonstrated selective lethality of RBM39 inhibition in therapy-resistant CD138- MM cells.
Conclusions:
- The splicing pathway, particularly targeting RBM39, represents a promising therapeutic strategy for overcoming multiple myeloma resistance.
- Understanding cellular heterogeneity is crucial for developing effective MM treatments.
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