Robustness of mitochondrial biogenesis and respiration explain aerobic glycolysis
Arunachalam, E.; Keber, F. C.; Law, R. C.; Kumar, C. K.; Shen, Y.; Park, J. O.; Wuehr, M.; Needleman, D. J.
Show abstract
A long-standing observation is that in fast-growing cells, respiration rate declines with increasing growth rate and is compensated by an increase in fermentation, despite respiration being more efficient than fermentation. This apparent preference for fermentation even in the presence of oxygen is known as aerobic glycolysis, and occurs in bacteria, yeast, and cancer cells. Considerable work has focused on understanding the potential benefits that might justify this seemingly wasteful metabolic strategy, but its mechanistic basis remains unclear. Here we show that aerobic glycolysis results from the saturation of mitochondrial respiration and the decoupling of mitochondrial biogenesis from the production of other cellular components. Respiration rate is insensitive to acute perturbations of cellular energetic demands or nutrient supplies, and is explained simply by the amount of mitochondria per cell. Mitochondria accumulate at a nearly constant rate across different growth conditions, resulting in mitochondrial amount being largely determined by cell division time. In contrast, glucose uptake rate is not saturated, and is accurately predicted by the abundances and affinities of glucose transporters. Combining these models of glucose uptake and respiration provides a quantitative, mechanistic explanation for aerobic glycolysis. The robustness of specific respiration rate and mitochondrial biogenesis, paired with the flexibility of other bioenergetic and biosynthetic fluxes, may play a broad role in shaping eukaryotic cell metabolism.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Cancer cells depend on environmental lipids for proliferation when electron acceptors are limited 97%
- Hexokinase detachment from mitochondria drives the Warburg effect to support compartmentalized ATP production 95%
- Glycolysis-derived alanine from glia fuels neuronal mitochondria for memory in Drosophila 95%
Similar papers in this journal
Similar papers in this journal
- A trade-off between stress resistance and tolerance underlies the adaptive response to hydrogen peroxide 95%
- Emergence of synchronized multicellular mechanosensing from spatiotemporal integration of heterogeneous single-cell information transfer 94%
- Evolution in microbial microcosms is highly parallel regardless of the presence of interacting species 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.