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Ekvik, A. E.

Publications and source records attributed to Ekvik, A. E..

2 recordsLinked to original sources

Glycolytic ATP production enables rapid mammalian cell growth

Cells use ATP to fuel growth and maintenance. Surprisingly, much of the ATP in rapidly growing cells is produced through glycolytic fermentation rather than the more efficient process of respiration, a puzzling phenomenon known as the Warburg Effect. One proposed explanation is that glycolysis produces ATP faster than respiration, thereby enabling faster growth rates. But whether this explains the Warburg Effect is uncertain, as the ATP costs of mammalian cell growth have not been rigorously estimated. Here, we perform over 7500 measurements to estimate the ATP costs of growth and maintenance in mammalian cells across a range of growth rates and under perturbations to ATP production and demand. We find that respiration alone cannot meet the ATP demands of cells doubling faster than every 30 hours, roughly one-third of the maximal mammalian cell growth rate, demonstrating that the Warburg Effect is required to sustain the ATP demands of rapid cell growth.

systems biology↗

Genetically encoded tool for manipulation of ATP/ADP ratio in human cells

The ability of cells to power energy-demanding processes depends on maintaining the ATP hydrolysis reaction a billion-fold away from equilibrium. Cells respond to changes in energy state by sensing changes in ATP, ADP, AMP, and inorganic phosphate. A key barrier to a better understanding of the maintenance of energy homeostasis is a lack of tools for direct manipulation of energy state in living cells. Here, we report the development of ATPGobble-a genetically encoded tool for controlling cellular ATP hydrolysis rate. We validated ATPGobble by showing that it doubles the energy demand, decreases [ATP]/[ADP] and [ATP]/[AMP] ratios, and activates AMPK activity in human cells. We then used ATPGobble to systematically characterize the proteome and phosphoproteome changes caused by direct manipulation of the energy state. Our results establish ATPGobble as a powerful approach for dissecting the regulatory roles of energy state in human cells, opening new opportunities to study how cellular energy state governs physiology, stress responses, and disease processes.

systems biology↗