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AMPK maintains TCA cycle through sequential phosphorylation of PDHA to promote tumor metastasis
Zhen Cai1, Danni Peng1, Hui-Kuan Lin1
1Department of Cancer Biology, Wake Forest School of Medicine, Winston-Salem, NC 27157, USA.
Abstract:
Cancer represents the leading public health problem throughout the world. Globally, about one out of six deaths is related to cancer, which is largely due to the metastatic lesions. However, there are no effective strategies for targeting cancer metastasis. Identification of the key druggable targets maintaining metastasis is crucial for cancer treatment. In our recent study (Cai et al. (2020), Mol Cell, doi: 10.1016/j.molcel.2020.09.018), we found that activity of AMPK was enriched in metastatic tumors compared to primary tumors. Depletion of AMPK rendered cancer cells more sensitive to metabolic and oxidative stress, leading to the impairment of breast cancer lung metastasis. Activation of AMPK rewired cancer metabolism towards TCA cycle, which protects disseminated cancer cells from both metabolic and oxidative stress-induced cell death, and facilitates cancer metastasis. Further, AMPK critically maintained the activity of pyruvate dehydrogenase complex (PDH), the rate limiting enzyme involved in TCA cycle, thus favoring the pyruvate metabolism towards TCA cycle rather than converting it to lactate. Mechanistically, AMPK was shown to co-localize with PDHA, the catalytic subunit of PDH, in the mitochondrial matrix and directly triggered the phosphorylation of PDHA on Ser295 and Ser314. Hyper-phosphorylation of Ser295 and Ser314 of PDHA promotes lung metastasis through elevating activity of PDH. Of note, PDHA Ser314 phosphorylation abrogated the interaction between PDHA and PDHKs leading to the dephosphorylation on previously reported S293 site, whose phosphorylation serves as a negative signal for PDH activation, while S295 phosphorylation serves as an intrinsic catalytic site required for pyruvate metabolism. Our study presented the first evidence for the pro-metastatic property of the AMPK-PDH axis and advance our current understanding of how PDH is activated under physiological and pathological conditions.
Insights
AMP-activated protein kinase (AMPK) promotes cancer metastasis by activating the pyruvate dehydrogenase complex (PDH). Targeting this AMPK-PDH axis could offer new strategies against metastatic cancer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Cancer metastasis is a major cause of cancer-related deaths globally.
- Effective strategies to target cancer metastasis remain limited.
- Identifying key molecular targets that drive metastasis is critical for developing new cancer therapies.
Purpose of the Study:
- To investigate the role of AMPK in cancer metastasis.
- To identify the molecular mechanisms by which AMPK influences cancer cell metabolism and metastasis.
- To explore the potential of targeting the AMPK-PDH axis for cancer treatment.
Main Methods:
- Comparative analysis of AMPK activity in primary and metastatic tumors.
- Experimental manipulation of AMPK levels in cancer cells.
- Metabolic profiling and assessment of oxidative stress sensitivity.
- Biochemical assays to determine PDH activity and phosphorylation status.
- Co-localization studies of AMPK and PDHA within mitochondria.
Main Results:
- AMPK activity is enriched in metastatic tumors.
- Depletion of AMPK impairs breast cancer lung metastasis by increasing sensitivity to stress.
- AMPK activation promotes cancer cell survival by rewiring metabolism towards the TCA cycle via PDH activation.
- AMPK directly phosphorylates PDHA at Ser295 and Ser314, enhancing PDH activity and promoting lung metastasis.
Conclusions:
- The AMPK-PDH axis plays a crucial role in promoting cancer metastasis.
- AMPK activation facilitates cancer cell adaptation to metabolic and oxidative stress during metastasis.
- Targeting the AMPK-PDH interaction presents a potential therapeutic strategy for inhibiting cancer spread.
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