ArticleCancer research2023
CK1δ and CK1ε Signaling Sustains Mitochondrial Metabolism and Cell Survival in Multiple Myeloma.
Article in Cancer research, 2023. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 10 papers.
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Who cites it
10 citing papers in PubMed, 11 citations in OpenAlex.
- PPRC1 is a prognostic biomarker and key regulator of mitochondrial oxidative phosphorylation in multiple myeloma.Annals of medicine · 2026Article
- Integrated Genomic and Epigenomic Analysis Reveals Epigenetic Plasticity in Disease Progression and Multidrug Resistance in Multiple Myeloma.Cancer research · 2026Article
- Unc-51 like kinase 3 (ULK3) contributes to autophagy and cell survival in multiple myeloma.Nature communications · 2026Article
- Umbralisib antagonizes multidrug resistance in ABCB1-overexpressing cancer cells.Frontiers in oncology · 2026Article
- Darunavir analog precursors target mitochondrial metabolism in multiple myeloma and CLL.Cancer cell international · 2025Article
- CSNK1D inhibition suppresses head and neck squamous cell carcinoma progression through SHH and PTCH1 pathway.Cell death & disease · 2025Article
- Integrated multi-omics characterization across clinically relevant subgroups of long COVID.National science review · 2025Article
- Casein kinase 1 epsilon (CK1ε) as a potential therapeutic target in chronic liver disease.Journal of veterinary science · 2025Review
- Epigenetic Plasticity Drives Carcinogenesis and Multi-Therapy Resistance in Multiple Myeloma.Research square · 2025Article
- Unveiling the role of melatonin-related gene CSNK1D in osteoclastogenesis and its implications for osteoporosis treatment.Experimental physiology · 2025Article
Corrections and comments
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Authors and funding
26 authors at 3 institutions in 2 countries.
Funding
Abstract
Multiple myeloma remains an incurable malignancy due to acquisition of intrinsic programs that drive therapy resistance. Here we report that casein kinase-1δ (CK1δ) and CK1ε are therapeutic targets in multiple myeloma that are necessary to sustain mitochondrial metabolism. Specifically, the dual CK1δ/CK1ε inhibitor SR-3029 had potent in vivo and ex vivo anti-multiple myeloma activity, including against primary multiple myeloma patient specimens. RNA sequencing (RNA-seq) and metabolic analyses revealed inhibiting CK1δ/CK1ε disables multiple myeloma metabolism by suppressing genes involved in oxidative phosphorylation (OxPhos), reducing citric acid cycle intermediates, and suppressing complexes I and IV of the electron transport chain. Finally, sensitivity of multiple myeloma patient specimens to SR-3029 correlated with elevated expression of mitochondrial genes, and RNA-seq from 687 multiple myeloma patient samples revealed that increased CSNK1D, CSNK1E, and OxPhos genes correlate with disease progression and inferior outcomes. Thus, increases in mitochondrial metabolism are a hallmark of multiple myeloma progression that can be disabled by targeting CK1δ/CK1ε. SIGNIFICANCE: CK1δ and CK1ε are attractive therapeutic targets in multiple myeloma whose expression increases with disease progression and connote poor outcomes, and that are necessary to sustain expression of genes directing OxPhos.
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Registered trials
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