Betulinic acid-induced mitochondria-dependent cell death is counterbalanced by an autophagic salvage response
L Potze1, F B Mullauer1, S Colak1
1Laboratory for Experimental Oncology and Radiobiology (LEXOR), Center for Experimental and Molecular Medicine, Academic Medical Center (AMC), Amsterdam, The Netherlands.
Abstract:
Betulinic acid (BetA) is a plant-derived pentacyclic triterpenoid that exerts potent anti-cancer effects in vitro and in vivo. It was shown to induce apoptosis via a direct effect on mitochondria. This is largely independent of proapoptotic BAK and BAX, but can be inhibited by cyclosporin A (CsA), an inhibitor of the permeability transition (PT) pore. Here we show that blocking apoptosis with general caspase inhibitors did not prevent cell death, indicating that alternative, caspase-independent cell death pathways were activated. BetA did not induce necroptosis, but we observed a strong induction of autophagy in several cancer cell lines. Autophagy was functional as shown by enhanced flux and degradation of long-lived proteins. BetA-induced autophagy could be blocked, just like apoptosis, with CsA, suggesting that autophagy is activated as a response to the mitochondrial damage inflicted by BetA. As both a survival and cell death role have been attributed to autophagy, autophagy-deficient tumor cells and mouse embryo fibroblasts were analyzed to determine the role of autophagy in BetA-induced cell death. This clearly established BetA-induced autophagy as a survival mechanism and indicates that BetA utilizes an as yet-undefined mechanism to kill cancer cells.
Insights
Betulinic acid (BetA) triggers cancer cell death through a novel, caspase-independent pathway. While BetA induces autophagy as a survival response to mitochondrial damage, it ultimately leads to cell death via an undefined mechanism.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Betulinic acid (BetA), a plant-derived triterpenoid, exhibits significant anti-cancer properties.
- BetA induces apoptosis through mitochondrial pathways, independent of BAK and BAX, and is inhibited by cyclosporin A (CsA).
Purpose of the Study:
- To elucidate the cell death mechanisms activated by BetA in cancer cells.
- To investigate the role of autophagy in BetA-induced cell death.
Main Methods:
- Utilized caspase inhibitors to assess apoptosis-independent cell death.
- Analyzed autophagy induction and flux in response to BetA.
- Examined BetA's effects on autophagy-deficient cells and mouse embryo fibroblasts.
Main Results:
- BetA induced caspase-independent cell death, not necroptosis, but strongly activated functional autophagy.
- BetA-induced autophagy, like apoptosis, was blocked by CsA, indicating it's a response to mitochondrial damage.
- Autophagy acts as a survival mechanism, with BetA utilizing an unknown pathway for cancer cell killing.
Conclusions:
- Betulinic acid activates a novel caspase-independent cell death pathway in cancer cells.
- Autophagy is induced by BetA as a survival response to mitochondrial damage, not as a direct cause of cell death.
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