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Münch, C.

Publications and source records attributed to Münch, C..

2 recordsLinked to original sources

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↗

Protein content and lipid profiling of isolated native autophagosomes

Autophagy is a central eukaryotic catabolic pathway responsible for clearance and recycling of an extensive portfolio of cargoes, which are packed in vesicles, called autophagosomes, and are delivered to lysosomes for degradation. Besides basal autophagy, which constantly degrades cellular material, the pathway is highly responsive to several stress conditions. However, the exact protein content and phospholipid composition of autophagosomes under changing autophagy conditions remain elusive so far. Here, we introduce a FACS-based approach for isolation of native unmanipulated autophagosomes and ensure the quality of the preparations. Employing quantitative proteomics and phospholipidomics, we obtained a profound cargo and lipid profile of autophagosomes purified upon basal autophagy conditions, nutrient deprivation, and proteasome inhibition. Indeed, starvation only mildly affected the content profile, while interference with proteasome activity showed stronger effects and specifically altered autophagosome cargoes. Interestingly, the phospholipid composition of autophagosomes was unaffected by the different treatments. Thus, the novel isolation method enables purification of intact autophagosomes in large quantities and allows protein content and phospholipid profiling without the requirement of exhaustive cellular fractionation or genetic manipulation.

biochemistry↗