ArticleClinical cancer research : an official journal of the American Association for Cancer Research2025
Targeting Acetyl-CoA Carboxylase Suppresses De Novo Lipogenesis and Tumor Cell Growth in Multiple Myeloma.
Article in Clinical cancer research : an official journal of the American Association for Cancer Research, 2025. 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.
- CCT2 Promotes Prostate Cancer Progression Through EIF3F-Dependent Stabilization of FASN.Advanced science (Weinheim, Baden-Wurttemberg, Germany) · 2026Article
- Fatty acid synthesis supports tumor progression through facilitating the activity of TORC1 signaling.Cell death & disease · 2026Article
- Metabolic reprogramming in cancer: dysregulation of glucose, lipid, and amino acid pathways and therapeutic opportunities.Molecular biomedicine · 2026Review
- Metabolic Heterogeneity and Niche Rewiring in Plasma Cells are Associated with Progression from MGUS to Multiple Myeloma.Research square · 2026Article
- Immunometabolism: crosstalk with tumor metabolism and implications for cancer immunotherapy.Molecular cancer · 2025Review
- MCEE Promotes Intramuscular Fat Deposition in Pigs Through Regulating Mitochondrial Function.Animals : an open access journal from MDPI · 2025Article
- Assessing Acetyl-Coenzyme A Carboxylase Activity and Inhibition inAnalytical chemistry · 2025Article
- Article
- Targeting the Inflammation-Metabolism Axis in MGUS: Causal Roles of CXCL10 Mediated by Blood Metabolites.Mediators of inflammation · 2025Article
- Integrated single-cell and bulk RNA sequencing analysis revealsFrontiers in immunology · 2025Article
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Authors and funding
25 authors.
Funding
Abstract
purposeIn multiple myeloma, tumor cells reprogram metabolic pathways to sustain growth and monoclonal immunoglobulin production. This study examines acetyl-CoA carboxylase 1 (ACC1), the enzyme driving the rate-limiting step in de novo lipogenesis, in multiple myeloma metabolic reprogramming, particularly in c-MYC (MYC)-driven subtypes. EXPERIMENTAL
designACC1 expression was evaluated across multiple myeloma genetic subgroups, focusing on MYC translocations. Functional studies using ACC1 inhibitors and genetic knockdown assessed multiple myeloma cell growth, lipid synthesis, and metabolic homeostasis in vitro and in vivo. The role of MYC overexpression in ACC1 sensitivity was examined, with palmitate rescue experiments. Lipidomic analysis and assessments of endoplasmic reticulum (ER) stress, protein translation, and oxidative damage elucidated underlying mechanisms.
resultsACC1 was overexpressed in MYC-translocated multiple myeloma. Its inhibition or knockdown reduced multiple myeloma cell growth in vitro and in vivo, particularly in MYC-overexpressing cells. ACC1 knockdown suppressed de novo lipid synthesis, partially rescued by palmitate. Lipidomic disruptions increased cholesterol ester desaturation and altered phospholipid ratios, inducing ER stress, impaired translation, protein carbonylation, oxidative damage, and apoptosis.
conclusionsACC1 is a metabolic vulnerability in MYC-driven multiple myeloma. Inhibiting ACC1 disrupts lipid homeostasis, induces ER stress, and causes oxidative damage, impairing cell survival. Targeting lipid synthesis pathways, especially in MYC-dependent subtypes, offers a promising therapeutic strategy for multiple myeloma.
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