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Lorenz, N. I.

Publications and source records attributed to Lorenz, N. I..

2 recordsLinked to original sources

PKM2 diverts glycolytic flux in dependence on formate overflow

Throughout the metastatic cascade, cancer cells are faced with harsh metabolic environments and nutritional stresses which apply selection pressure leaving only the most metabolically resilient cells to survive and form metastases. Metabolic characterisation of such cell populations in vitro is currently challenging. Using galactose as a tool compound to mimic glycolytic limitation within the tumour microenvironment of primary and secondary neoplastic sites, we were able to uncover metabolic flexibility and plasticity of cancer cells in vitro. In contrast to the established idea that high glycolytic flux and expression of dimeric PKM2 redirects carbons towards anabolic routes such as the pentose phosphate pathway and serine synthesis pathway (SSP), we have discovered by using stable-isotope tracing that also glycolytic limitation results in metabolic rewiring. Surprisingly, despite limited carbon availability and energetic stress, cells induce a near complete block of pyruvate kinase isozyme M2 (PKM2) to divert carbons towards SSP. Simultaneously, TCA cycle flux is sustained and oxygen consumption is increased, both supported by glutamine. Glutamine not only supports TCA cycle flux but also SSP via distinct mechanisms. Due to PKM2 block, malic enzyme exclusively supports TCA cycle flux while mitochondrial phosphoenolpyruvate carboxykinase supports SSP. Moreover, by using genetic modifications of different one-carbon (1C) cycle enzymes, we are able to reverse the PKM2 block suggesting a link between mitochondrial 1C cycle and pyruvate kinase. Thus we show that PKM2 inhibition acts as a branching point to direct glycolytic and glutamine carbons into distinct routes, overall supporting the metabolic plasticity and flexibility of cancer cells.

cancer biology↗

AMP-kinase mediates adaptation of glioblastoma cells to conditions of the tumour microenvironment

AMP-activated protein kinase (AMPK) is a central cellular energy sensor that regulates metabolic activity. We hypothesised that in glioblastoma (GB), AMPK plays a pivotal role in balancing metabolism under conditions of the tumour microenvironment, which is characterised by fluctuating and often low nutrient and oxygen availability. Impairment of this network could thus interfere with tumour progression. AMPK activity was modulated genetically by CRISPR/Cas9-based double knockout (DKO) of the catalytic 1 and 2 subunits in human GB cells and effects were confirmed by pharmacological AMPK inhibition using BAY3827 and an inactive control compound in primary GB cell lines. We found that metabolic adaptation of GB cells under energy stress conditions (hypoxia, glucose deprivation) was dependent on AMPK and accordingly that, AMPK DKO cells were more vulnerable to glucose-deprivation or inhibition of glycolysis and sensitised to hypoxia-induced cell death. This effect was rescued by reexpression of the AMPK 2 subunit. Similar results were observed using the selective pharmacological AMPK inhibitor BAY3827. Mitochondrial biogenesis was regulated AMPK-dependently with a reduced mitochondrial mass and mitochondrial membrane potential in AMPK DKO GB cells. In vivo, AMPK DKO GB cells showed impaired tumour growth and tumour formation in CAM assays as well as in an orthotopic glioma mouse model. Our study highlights the importance of AMPK for GB cell adaptation towards energy depletion and emphasises the role of AMPK for tumour formation in vivo. Moreover, we identified mitochondria as central downstream effectors of AMPK signalling. The development of AMPK inhibitors could open opportunities for the treatment of hypoxic tumours.

cancer biology↗