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A key role for mitochondrial gatekeeper pyruvate dehydrogenase in oncogene-induced senescence
Joanna Kaplon1, Liang Zheng, Katrin Meissl
1Division of Molecular Oncology, The Netherlands Cancer Institute, Plesmanlaan 121, 1066 CX Amsterdam, The Netherlands.
Abstract:
In response to tenacious stress signals, such as the unscheduled activation of oncogenes, cells can mobilize tumour suppressor networks to avert the hazard of malignant transformation. A large body of evidence indicates that oncogene-induced senescence (OIS) acts as such a break, withdrawing cells from the proliferative pool almost irreversibly, thus crafting a vital pathophysiological mechanism that protects against cancer. Despite the widespread contribution of OIS to the cessation of tumorigenic expansion in animal models and humans, we have only just begun to define the underlying mechanism and identify key players. Although deregulation of metabolism is intimately linked to the proliferative capacity of cells, and senescent cells are thought to remain metabolically active, little has been investigated in detail about the role of cellular metabolism in OIS. Here we show, by metabolic profiling and functional perturbations, that the mitochondrial gatekeeper pyruvate dehydrogenase (PDH) is a crucial mediator of senescence induced by BRAF(V600E), an oncogene commonly mutated in melanoma and other cancers. BRAF(V600E)-induced senescence was accompanied by simultaneous suppression of the PDH-inhibitory enzyme pyruvate dehydrogenase kinase 1 (PDK1) and induction of the PDH-activating enzyme pyruvate dehydrogenase phosphatase 2 (PDP2). The resulting combined activation of PDH enhanced the use of pyruvate in the tricarboxylic acid cycle, causing increased respiration and redox stress. Abrogation of OIS, a rate-limiting step towards oncogenic transformation, coincided with reversion of these processes. Further supporting a crucial role of PDH in OIS, enforced normalization of either PDK1 or PDP2 expression levels inhibited PDH and abrogated OIS, thereby licensing BRAF(V600E)-driven melanoma development. Finally, depletion of PDK1 eradicated melanoma subpopulations resistant to targeted BRAF inhibition, and caused regression of established melanomas. These results reveal a mechanistic relationship between OIS and a key metabolic signalling axis, which may be exploited therapeutically.
Insights
Oncogene-induced senescence (OIS) prevents cancer by halting cell proliferation. This study reveals pyruvate dehydrogenase (PDH) is key to OIS, linking metabolism to cancer suppression and offering new therapeutic targets for melanoma.
Area of Science:
- Oncology
- Cellular Biology
- Metabolism
Background:
- Oncogene-induced senescence (OIS) is a crucial tumor suppressor mechanism that halts cancer cell proliferation.
- While senescent cells remain metabolically active, the role of cellular metabolism in OIS is not fully understood.
Purpose of the Study:
- To investigate the role of cellular metabolism, specifically pyruvate dehydrogenase (PDH), in oncogene-induced senescence (OIS).
- To explore the therapeutic potential of targeting the PDH metabolic axis in BRAF(V600E)-driven cancers, particularly melanoma.
Main Methods:
- Metabolic profiling and functional perturbations were used to analyze the role of PDH in BRAF(V600E)-induced OIS.
- Investigated the regulation of PDH by pyruvate dehydrogenase kinase 1 (PDK1) and pyruvate dehydrogenase phosphatase 2 (PDP2) during OIS.
- Assessed the impact of modulating PDK1 and PDP2 on OIS and melanoma development.
Main Results:
- BRAF(V600E)-induced OIS involves suppression of PDK1 and induction of PDP2, leading to PDH activation.
- Activated PDH enhances pyruvate utilization in the TCA cycle, increasing respiration and redox stress, which are crucial for OIS.
- Modulating PDK1 or PDP2 levels disrupted OIS, promoting BRAF(V600E)-driven melanoma.
- Depleting PDK1 eliminated BRAF inhibitor-resistant melanoma and regressed established melanomas.
Conclusions:
- Pyruvate dehydrogenase (PDH) is a critical mediator of oncogene-induced senescence (OIS) in BRAF(V600E)-driven cancers.
- The metabolic axis involving PDH, PDK1, and PDP2 represents a novel therapeutic vulnerability in melanoma.
- Targeting PDK1 can overcome resistance to BRAF inhibitors and induce melanoma regression.
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