ArticleHaematologica2025
Mitochondrial fission factor drives an actionable metabolic vulnerability in multiple myeloma.
Article in Haematologica, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Mitochondrial dynamics: A promising tool for personalized TNBC management.Genes & diseases · 2026Review
- Mitochondrial Fitness as a Functional Immune Checkpoint in Cancer: Metabolic Plasticity, Tumor Evolution, and Immunotherapy.Cancers · 2026Review
- Repurposing Syrosingopine for Cancer Therapy: Lactate Trapping and ISR Sensitization as Metabolic Vulnerabilities.Oncology and therapy · 2026Review
- Targeting Mitochondrial Vulnerabilities in Chronic Myeloid Leukemia: From Pathobiology to Novel Therapeutic Opportunities.Cancers · 2026Review
- OPA1 as a Cancer Target: Molecular Mechanisms, Structural Insights, and Strategies for Drug Development.Antioxidants (Basel, Switzerland) · 2026Review
- Discovery of a Promising Hydroxyamino-Piperidine HDAC6 Inhibitor via Integrated Virtual Screening and Experimental Validation in Multiple Myeloma.Pharmaceuticals (Basel, Switzerland) · 2025Article
- Targeting the MARCH5-MFN2 axis to enhance mitochondrial fusion and sensitize multiple myeloma cells to venetoclax.Journal of translational medicine · 2025Article
- Prokaryotic organelle mitochondria drive tumorigenesis: "the original sin".Frontiers in oncology · 2025Review
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Authors and funding
20 authors.
Funding
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Abstract
Proliferating multiple myeloma (MM) cells in the bone marrow fluctuate across various metabolic states to resist cancer treatments. Herein, we investigate how mitochondrial dynamics, which control mitochondrial fitness via coordinated fission and fusion events, shape MM cell metabolism impacting growth, survival and drug sensitivity. We identify mitochondrial fission factor (MFF), a pivotal driver of mitochondrial fragmentation, as being highly expressed in MM plasma cells bearing cytogenetic abnormalities predicting poor clinical outcome. In preclinical models, selective inhibition of MFF via multiple RNA-based strategies (short-hairpin RNA, short-interfering RNA or LNA gapmeR antisense oligonucleotides) reduces MM cell growth both in vitro and in vivo, enabling adaptive metabolic responses consistent with the induction of glycolysis and the inhibition of lactate-mediated oxidative phosphorylation. We also demonstrate that lactate supplementation, as well as clinically relevant drugs promoting lactate accumulation, such as AZD3965 and syrosingopine, trigger MFF-dependent metabolic changes, enhancing the sensitivity of MM cells to strategies targeting mitochondrial fission. Finally, we highlight a novel lactate-MFF axis involved in resistance to proteasome inhibitors, and show that combining AZD3965 or syrosingopine with bortezomib results in synergistic anti-MM activity along with MFF downregulation. Collectively, these data point to MFF-dependent mitochondrial fragmentation as a key metabolic hallmark of MM, providing a framework for the development of novel therapeutic strategies targeting mitochondrial dynamics and harnessing the metabolic plasticity of malignant plasma cells.
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