Oncogene-induced senescence results in marked metabolic and bioenergetic alterations
Celia Quijano1, Liu Cao, Maria M Fergusson
1Center for Molecular Medicine, National Heart Lung and Blood Institute, National Institutes of Health, Bethesda, MD, USA.
Abstract:
Oncogene-induced senescence (OIS) is characterized by permanent growth arrest and the acquisition of a secretory, pro-inflammatory state. Increasingly, OIS is viewed as an important barrier to tumorgenesis. Surprisingly, relatively little is known about the metabolic changes that accompany and therefore may contribute to OIS. Here, we have performed a metabolomic and bioenergetic analysis of Ras-induced senescence. Profiling approximately 300 different intracellular metabolites reveals that cells that have undergone OIS develop a unique metabolic signature that differs markedly from cells undergoing replicative senescence. A number of lipid metabolites appear uniquely increased in OIS cells, including a marked increase in the level of certain intracellular long chain fatty acids. Functional studies reveal that this alteration in the metabolome reflects substantial changes in overall lipid metabolism. In particular, Ras-induced senescent cells manifest a decline in lipid synthesis and a significant increase in fatty acid oxidation. Increased fatty acid oxidation results in an unexpectedly high rate of basal oxygen consumption in cells that have undergone OIS. Pharmacological or genetic inhibition of carnitine palmitoyltransferase 1, the rate-limiting step in mitochondrial fatty acid oxidation, restores a pre-senescent metabolic rate and, surprisingly, selectively inhibits the secretory, pro-inflammatory state that accompanies OIS. Thus, Ras-induced senescent cells demonstrate profound alterations in their metabolic and bioenergetic profiles, particularly with regards to the levels, synthesis and oxidation of free fatty acids. Furthermore, the inflammatory phenotype that accompanies OIS appears to be related to these underlying changes in cellular metabolism.
Insights
Oncogene-induced senescence (OIS) involves altered lipid metabolism, with increased fatty acid oxidation. Inhibiting this pathway reduces OIS
Area of Science:
- Cellular senescence
- Metabolic reprogramming
- Cancer biology
Background:
- Oncogene-induced senescence (OIS) is a tumor suppressor mechanism.
- OIS involves permanent growth arrest and a pro-inflammatory secretory phenotype.
- Metabolic changes during OIS are not well understood.
Purpose of the Study:
- To investigate the metabolomic and bioenergetic alterations in Ras-induced senescence.
- To determine the role of lipid metabolism in OIS.
- To explore therapeutic strategies targeting OIS metabolism.
Main Methods:
- Metabolomic and bioenergetic profiling of Ras-induced senescent cells.
- Analysis of intracellular metabolites and cellular respiration.
- Pharmacological and genetic inhibition of fatty acid oxidation.
Main Results:
- OIS cells exhibit a unique metabolic signature distinct from replicative senescence.
- Increased intracellular long-chain fatty acids, decreased lipid synthesis, and enhanced fatty acid oxidation were observed.
- Inhibition of fatty acid oxidation normalized metabolic rate and reduced the pro-inflammatory state.
Conclusions:
- Ras-induced senescence is characterized by significant alterations in lipid metabolism, particularly fatty acid oxidation.
- Increased fatty acid oxidation contributes to the high basal oxygen consumption in OIS cells.
- Targeting fatty acid oxidation may represent a therapeutic strategy for OIS-associated inflammation.
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