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TSC2 Deficiency Unmasks a Novel Necrosis Pathway That Is Suppressed by the RIP1/RIP3/MLKL Signaling Cascade
Piotr T Filipczak1, Cindy Thomas1, Wenshu Chen1
1Lovelace Respiratory Research Institute, Albuquerque, New Mexico.
Abstract:
Tuberous sclerosis complex (TSC) is a genetic multiorgan disorder characterized by the development of neoplastic lesions in kidney, lung, brain, heart, and skin. It is caused by an inactivating mutation in tumor suppressor genes coding the TSC1/TSC2 complex, resulting in the hyperactivation of mTOR- and Raf/MEK/MAPK-dependent signaling that stimulates tumor cell proliferation and metastasis. Despite its oncogenic effect, cells with TSC deficiency were more sensitive to oxidative stress and dependent on mitochondrial metabolism, providing a rationale for a new therapeutic approach. The current study shows that simultaneous inhibition of two major pathways regulating redox homeostasis using l-buthionine-sulfoximine (BSO, glutathione synthesis inhibitor) and auranofin (thioredoxin reductase inhibitor) induces oxidative burst, mitochondrial damage, and necrotic cell death in TSC-deficient cells in a highly synergistic and cell context-specific manner. Furthermore, blocking RIP1/RIP3/MLKL-dependent signaling using chemical inhibitors necrostatin-1 (Nec-1) and necrosulfonamide (NSA) synergizes with BSO and auranofin in killing TSC-deficient cells. Expression analysis demonstrated that RIP1, RIP3, and MLKL protein levels are elevated in cells with TSC2 deficiency, and their inactivation enhances mitochondrial dysfunction in a glutaminolysis-dependent and autophagy-independent manner. Finally, supplementation with the mitochondrial metabolite α-ketoglutarate, whose synthesis is regulated by RIP1/RIP3/MLKL, rescues cells from the sensitizing effect of Nec-1 and NSA. Together, this study identifies a previously unrecognized novel regulated necrotic death pathway that involves mitochondrial homeostasis, is suppressed by the RIP1/RIP3/MLKL signaling in TSC-deficient cells, and could be a promising therapeutic target for TSC-associated tumors. Cancer Res; 76(24); 7130-9. ©2016 AACR.
Insights
Targeting redox homeostasis and RIP1/RIP3/MLKL signaling simultaneously kills tuberous sclerosis complex (TSC) deficient cells. This novel approach exploits TSC cell vulnerability to oxidative stress and mitochondrial dysfunction for cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Tuberous sclerosis complex (TSC) is a genetic disorder causing tumors due to TSC1/TSC2 mutations.
- TSC mutations activate mTOR and MAPK pathways, promoting tumor growth.
- TSC-deficient cells exhibit heightened sensitivity to oxidative stress and rely on mitochondrial metabolism.
Purpose of the Study:
- To investigate novel therapeutic strategies targeting TSC-deficient cells.
- To explore the role of redox homeostasis and regulated necrotic death pathways in TSC.
- To identify potential therapeutic targets for TSC-associated tumors.
Main Methods:
- Simultaneous inhibition of glutathione synthesis (l-buthionine-sulfoximine) and thioredoxin reductase (auranofin).
- Inhibition of RIP1/RIP3/MLKL signaling pathway using necrostatin-1 and necrosulfonamide.
- Analysis of protein expression, mitochondrial function, and cell death mechanisms.
Main Results:
- Combined BSO and auranofin induced oxidative stress, mitochondrial damage, and cell death in TSC-deficient cells.
- RIP1/RIP3/MLKL inhibition synergized with BSO and auranofin to kill TSC-deficient cells.
- RIP1, RIP3, and MLKL are upregulated in TSC2-deficient cells, and their inhibition exacerbates mitochondrial dysfunction.
Conclusions:
- A novel regulated necrotic death pathway involving mitochondrial homeostasis, suppressed by RIP1/RIP3/MLKL signaling, is identified in TSC-deficient cells.
- Targeting this pathway offers a promising therapeutic strategy for TSC-associated tumors.
- α-ketoglutarate supplementation rescues cells, highlighting the role of mitochondrial metabolism.
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