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Updated: Jul 25, 2025

Repression of Multiple Myeloma Cell Growth In Vivo by Single-wall Carbon Nanotube SWCNT-delivered MALAT1 Antisense Oligos
Published on: December 13, 2018
Shutting off the fuel supply to target metabolic vulnerabilities in multiple myeloma
Priyanka S Rana1,2, Krishna Goparaju1,3, James J Driscoll1,2,3
1Division of Hematology and Oncology, Department of Medicine, Case Western Reserve University, Cleveland, OH, United States.
Abstract:
Pathways that govern cellular bioenergetics are deregulated in tumor cells and represent a hallmark of cancer. Tumor cells have the capacity to reprogram pathways that control nutrient acquisition, anabolism and catabolism to enhance their growth and survival. Tumorigenesis requires the autonomous reprogramming of key metabolic pathways that obtain, generate and produce metabolites from a nutrient-deprived tumor microenvironment to meet the increased bioenergetic demands of cancer cells. Intra- and extracellular factors also have a profound effect on gene expression to drive metabolic pathway reprogramming in not only cancer cells but also surrounding cell types that contribute to anti-tumor immunity. Despite a vast amount of genetic and histologic heterogeneity within and between cancer types, a finite set of pathways are commonly deregulated to support anabolism, catabolism and redox balance. Multiple myeloma (MM) is the second most common hematologic malignancy in adults and remains incurable in the vast majority of patients. Genetic events and the hypoxic bone marrow milieu deregulate glycolysis, glutaminolysis and fatty acid synthesis in MM cells to promote their proliferation, survival, metastasis, drug resistance and evasion of immunosurveillance. Here, we discuss mechanisms that disrupt metabolic pathways in MM cells to support the development of therapeutic resistance and thwart the effects of anti-myeloma immunity. A better understanding of the events that reprogram metabolism in myeloma and immune cells may reveal unforeseen vulnerabilities and advance the rational design of drug cocktails that improve patient survival.
Insights
Cancer cells reprogram metabolism for growth and survival. In multiple myeloma, deregulated metabolic pathways promote drug resistance and immune evasion, offering potential therapeutic targets.
Area of Science:
- Oncology
- Cancer Metabolism
- Immunology
Background:
- Cellular bioenergetics are deregulated in cancer, a hallmark of malignancy.
- Tumor cells reprogram nutrient acquisition, anabolism, and catabolism for growth and survival.
- Metabolic reprogramming is crucial for tumor cells in nutrient-poor microenvironments.
Purpose of the Study:
- To discuss mechanisms disrupting metabolic pathways in multiple myeloma (MM).
- To explore how metabolic reprogramming contributes to therapeutic resistance and immune evasion in MM.
- To highlight the potential for targeting metabolic vulnerabilities in MM.
Main Methods:
- Review of genetic events and the bone marrow microenvironment in MM.
- Analysis of deregulated metabolic pathways including glycolysis, glutaminolysis, and fatty acid synthesis.
- Discussion of intra- and extracellular factors influencing gene expression and metabolic reprogramming.
Main Results:
- Genetic events and hypoxia in MM deregulate key metabolic pathways.
- Reprogrammed metabolism in MM cells enhances proliferation, survival, and metastasis.
- Metabolic alterations contribute to drug resistance and evasion of anti-tumor immunity.
Conclusions:
- Understanding metabolic reprogramming in MM and immune cells is critical.
- Targeting metabolic pathways may overcome therapeutic resistance.
- Identifying metabolic vulnerabilities can guide the design of combination therapies to improve patient survival.
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