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Alterations in sphingolipid composition and mitochondrial bioenergetics represent synergistic therapeutic
Kelsey H Fisher-Wellman1, James T Hagen1, Miki Kassai2
1Department of Physiology, Brody School of Medicine, and the East Carolina Diabetes and Obesity Institute, East Carolina University, Greenville, North Carolina, USA.
Abstract:
Modifications in sphingolipid (SL) metabolism and mitochondrial bioenergetics are key factors implicated in cancer cell response to chemotherapy, including chemotherapy resistance. In the present work, we utilized acute myeloid leukemia (AML) cell lines, selected to be refractory to various chemotherapeutics, to explore the interplay between SL metabolism and mitochondrial biology supportive of multidrug resistance (MDR). In agreement with previous findings in cytarabine or daunorubicin resistant AML cells, relative to chemosensitive wildtype controls, HL-60 cells refractory to vincristine (HL60/VCR) presented with alterations in SL enzyme expression and lipidome composition. Such changes were typified by upregulated expression of various ceramide detoxifying enzymes, as well as corresponding shifts in ceramide, glucosylceramide, and sphingomyelin (SM) molecular species. With respect to mitochondria, despite consistent increases in both basal respiration and maximal respiratory capacity, direct interrogation of the oxidative phosphorylation (OXPHOS) system revealed intrinsic deficiencies in HL60/VCR, as well as across multiple MDR model systems. Based on the apparent requirement for augmented SL and mitochondrial flux to support the MDR phenotype, we explored a combinatorial therapeutic paradigm designed to target each pathway. Remarkably, despite minimal cytotoxicity in peripheral blood mononuclear cells (PBMC), co-targeting SL metabolism, and respiratory complex I (CI) induced synergistic cytotoxicity consistently across multiple MDR leukemia models. Together, these data underscore the intimate connection between cellular sphingolipids and mitochondrial metabolism and suggest that pharmacological intervention across both pathways may represent a novel treatment strategy against MDR.
Insights
Targeting sphingolipid metabolism and mitochondrial complex I offers a novel strategy against multidrug-resistant (MDR) acute myeloid leukemia (AML). This approach synergistically kills cancer cells with minimal impact on healthy cells.
Area of Science:
- Biochemistry
- Cancer Biology
- Pharmacology
Background:
- Sphingolipid (SL) metabolism and mitochondrial bioenergetics are crucial in cancer chemotherapy response and resistance.
- Multidrug resistance (MDR) in acute myeloid leukemia (AML) involves complex interplay between these pathways.
Purpose of the Study:
- To investigate the relationship between SL metabolism and mitochondrial function in MDR AML.
- To explore a combinatorial therapeutic strategy targeting both pathways.
Main Methods:
- Utilized AML cell lines with acquired resistance to chemotherapeutics.
- Analyzed SL enzyme expression, lipidome composition, and mitochondrial oxidative phosphorylation (OXPHOS).
- Evaluated the cytotoxicity of co-targeting SL metabolism and respiratory Complex I (CI) in AML cells and peripheral blood mononuclear cells (PBMC).
Main Results:
- MDR AML cells exhibited altered SL enzyme expression and lipid profiles, with upregulated ceramide detoxifying enzymes.
- Despite increased respiration, MDR cells showed intrinsic deficiencies in the OXPHOS system.
- Co-targeting SL metabolism and CI demonstrated synergistic cytotoxicity in MDR AML models with minimal PBMC toxicity.
Conclusions:
- A strong link exists between cellular sphingolipid metabolism and mitochondrial function in supporting the MDR phenotype.
- Combined pharmacological targeting of SL metabolism and mitochondrial CI presents a promising novel therapeutic strategy for MDR leukemia.
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