Journalartikel
Autorenliste: Krabbendam, IE; Honrath, B; Dilberger, B; Iannetti, EF; Branicky, RS; Meyer, T; Evers, B; Dekker, FJ; Koopman, WJH; Beyrath, J; Bano, D; Schmidt, M; Bakker, BM; Hekimi, S; Culmsee, C; Eckert, GP; Dolga, AM
Jahr der Veröffentlichung: 2020
Seiten: 263-
Zeitschrift: Cell Death & Disease
Bandnummer: 11
Heftnummer: 4
ISSN: 2041-4889
Open Access Status: Gold
DOI Link: https://doi.org/10.1038/s41419-020-2458-4
Verlag: Springer Nature [academic journals on nature.com]
Abstract:
Metabolic flexibility is an essential characteristic of eukaryotic cells in order to adapt to physiological and environmental changes. Especially in mammalian cells, the metabolic switch from mitochondrial respiration to aerobic glycolysis provides flexibility to sustain cellular energy in pathophysiological conditions. For example, attenuation of mitochondrial respiration and/or metabolic shifts to glycolysis result in a metabolic rewiring that provide beneficial effects in neurodegenerative processes. Ferroptosis, a non-apoptotic form of cell death triggered by an impaired redox balance is gaining attention in the field of neurodegeneration. We showed recently that activation of small-conductance calcium-activated K+ (SK) channels modulated mitochondrial respiration and protected neuronal cells from oxidative death. Here, we investigated whether SK channel activation with CyPPA induces a glycolytic shift thereby increasing resilience of neuronal cells against ferroptosis, induced by erastin in vitro and in the nematode C. elegans exposed to mitochondrial poisons in vivo. High-resolution respirometry and extracellular flux analysis revealed that CyPPA, a positive modulator of SK channels, slightly reduced mitochondrial complex I activity, while increasing glycolysis and lactate production. Concomitantly, CyPPA rescued the neuronal cells from ferroptosis, while scavenging mitochondrial ROS and inhibiting glycolysis reduced its protection. Furthermore, SK channel activation increased survival of C. elegans challenged with mitochondrial toxins. Our findings shed light on metabolic mechanisms promoted through SK channel activation through mitohormesis, which enhances neuronal resilience against ferroptosis in vitro and promotes longevity in vivo.
Zitierstile
Harvard-Zitierstil: Krabbendam, I., Honrath, B., Dilberger, B., Iannetti, E., Branicky, R., Meyer, T., et al. (2020) SK channel-mediated metabolic escape to glycolysis inhibits ferroptosis and supports stress resistance in C. elegans, Cell Death & Disease, 11(4), p. 263. https://doi.org/10.1038/s41419-020-2458-4
APA-Zitierstil: Krabbendam, I., Honrath, B., Dilberger, B., Iannetti, E., Branicky, R., Meyer, T., Evers, B., Dekker, F., Koopman, W., Beyrath, J., Bano, D., Schmidt, M., Bakker, B., Hekimi, S., Culmsee, C., Eckert, G., & Dolga, A. (2020). SK channel-mediated metabolic escape to glycolysis inhibits ferroptosis and supports stress resistance in C. elegans. Cell Death & Disease. 11(4), 263. https://doi.org/10.1038/s41419-020-2458-4