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Extraction of Aqueous Metabolites from Cultured Adherent Cells for Metabolomic Analysis by Capillary Electrophoresis-Mass Spectrometry
Published on: June 9, 2019
Metabolic profiling of therapy-induced senescent cancer cells via TPEF, MALDI-MS, and RNA-sequencing
Silvia Ghislanzoni1, Federica Padelli1, Matteo Niero1
1Department of Diagnostic Innovation, Fondazione IRCCS Istituto Nazionale dei Tumori, Via Giacomo Venezian 1, Milan, 20133, Italy.
Abstract:
Despite advances in cancer therapies, treatment failure from resistance and recurrence remains a major clinical challenge. Therapy-induced senescence (TIS), a state of stable cell cycle arrest with sustained metabolic activity, has emerged as a driver of inflammation, tumor persistence, and relapse. However, the heterogeneity of TIS complicates its detection and targeting. Here, we applied a multi-modal strategy to characterize metabolic alterations in senescent cancer cells induced by doxorubicin or γ-irradiation across three tumor cell lines: MCF7, HeLa, and TPC-1. Mitochondrial dysfunction was assessed using MitoTracker and JC-1 staining, while two-photon excitation fluorescence (TPEF) microscopy enabled label-free visualization of intracellular NAD(P)H and FAD distribution. Lipid remodeling was evaluated by MALDI mass spectrometry imaging, and RNA sequencing was performed on control, senescent, and engulfing-senescent MCF7 cells to identify differentially expressed genes and enriched pathways. Senescent cells displayed mitochondrial dysfunction, with altered NAD(P)H/FAD distribution and decreased membrane potential. TPEF confirmed redistribution of coenzymes, reflecting redox changes. Lipidomics revealed consistent remodeling, notably involving cardiolipin precursors. Transcriptomic profiling showed engulfing-senescent MCF7 cells possess a distinct signature marked by increased lipid metabolism, endocrine signaling, and cell-cell communication. Overall, our findings reveal conserved and cell type-specific metabolic traits of TIS, highlighting metabolic vulnerabilities for senolytic intervention.
Insights
Therapy-induced senescence (TIS) drives cancer relapse. This study reveals conserved metabolic vulnerabilities in senescent cancer cells, including mitochondrial dysfunction and lipid remodeling, suggesting new targets for senolytic therapies to improve cancer treatment outcomes.
Area of Science:
- Oncology
- Cell Biology
- Metabolomics
Background:
- Cancer therapy resistance and recurrence are significant clinical challenges.
- Therapy-induced senescence (TIS) promotes tumor persistence and relapse through inflammation.
- Targeting TIS is complicated by its heterogeneity.
Purpose of the Study:
- To characterize metabolic alterations in senescent cancer cells induced by chemotherapy or irradiation.
- To identify conserved and cell type-specific metabolic traits of TIS.
- To highlight metabolic vulnerabilities for senolytic intervention.
Main Methods:
- Multi-modal characterization of senescent cancer cells (MCF7, HeLa, TPC-1).
- Mitochondrial function assessment (MitoTracker, JC-1 staining).
- Label-free imaging of NAD(P)H/FAD distribution (two-photon excitation fluorescence microscopy).
- Lipid remodeling analysis (MALDI mass spectrometry imaging).
- Transcriptomic profiling (RNA sequencing).
Main Results:
- Senescent cells exhibit mitochondrial dysfunction, altered NAD(P)H/FAD ratios, and decreased membrane potential.
- Lipidomics revealed consistent remodeling, particularly cardiolipin precursors.
- Transcriptomics identified distinct signatures in engulfing-senescent cells, involving lipid metabolism and cell communication.
Conclusions:
- TIS displays conserved and cell-specific metabolic alterations.
- Metabolic vulnerabilities in senescent cells offer targets for senolytic therapies.
- Understanding TIS metabolism is crucial for overcoming cancer treatment failure.
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