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Labunskyy, V.

Publications and source records attributed to Labunskyy, V..

2 recordsLinked to original sources

Boosting Cellular Longevity Through Intracellular ATP Modulation

Mitochondrial dysfunction and declining ATP production are common features of aging, yet whether ATP availability itself directly regulates cellular lifespan. However, the causal relationship between cellular ATP homeostasis and aging has not been established. Here, we developed a synthetic system to manipulate intracellular ATP independently of endogenous energy production by expressing a plasma membrane-targeted nucleotide transporter, NTT1, from the intracellular parasite Encephalitozoon cuniculi in Saccharomyces cerevisiae. NTT1 expression depleted intracellular ATP in the absence of extracellular ATP, whereas ATP supplementation produced robust NTT1-dependent ATP uptake and increased intracellular ATP abundance. ATP availability strongly influenced replicative lifespan: ATP depletion shortened lifespan, whereas ATP supplementation restored and extended lifespan in NTT1-expressing cells. Unexpectedly, extracellular ATP also extended lifespan in wild-type cells that lack ATP import, revealing an NTT1-independent response to extracellular ATP. Transcriptomic analyses showed that NTT1- mediated ATP import suppresses glucose uptake, carbohydrate catabolism, mitochondrial respiration, and autophagy, whereas extracellular ATP elicits a distinct transcriptional response in wild-type cells involving metabolic, mitochondrial, and signaling pathways. Single-cell aging analyses further showed that ATP supplementation extends lifespan across distinct aging trajectories and shifts cells away from the mitochondrial dysfunction-associated aging state. Finally, experiments in cells lacking mitochondrial DNA separated these effects mechanistically: NTT1-associated lifespan phenotypes and high-ATP toxicity required functional mitochondria, whereas extracellular ATP extended lifespan in wild-type cells independently of mitochondrial respiration. Together, these findings demonstrate that ATP availability is a direct regulator of cellular aging and reveal distinct metabolic and extracellular ATP-responsive routes through which cellular energy state influences longevity. SignificanceCellular energy homeostasis is a crucial factor in determining the health and longevity of organisms. While intracellular ATP levels are tightly regulated, the idea that cells can directly take in extracellular ATP to influence metabolism has not been thoroughly explored. In this study, we engineered yeast cells to import external ATP and demonstrated that this approach significantly alters mitochondrial function, metabolic flow, and aging processes. Our findings show that ATP uptake inhibits catabolic pathways and modulates mitochondrial bioenergetics function, thereby extending cellular lifespan through a novel and non-traditional mechanism. This research reveals an unexpected degree of metabolic flexibility and introduces a synthetic biology-based method to reprogram energy metabolism and longevity. The principles established in this study provide a new framework for understanding the role of cellular bioenergetics in aging, highlighting how the modulation of ATP availability can impact metabolic states and lifespan regulation.

molecular biology↗

Gene expression and protein synthesis remodeling in response to iron deficiency in yeast

Iron is an essential trace element that serves as a cofactor for enzymes involved in multiple metabolic pathways, including ribosome biogenesis, protein translation, DNA synthesis and repair, lipid metabolism, and mitochondrial oxidative phosphorylation. In eukaryotes, iron deficiency leads to global inhibition of protein synthesis and coordinated changes in gene expression to limit iron utilization. Although several steps of protein translation depend on iron-containing enzymes, the contribution of iron to the translation process is not understood at the molecular level. Here, we report a genome-wide analysis of protein translation in response to iron deficiency in yeast using ribosome profiling. We show that iron depletion affects global protein synthesis as well as leads to translational repression of several groups of genes involved in iron-related processes. We further demonstrate that the RNA-binding proteins Cth1 and Cth2 play a central role in controlling the changes in protein translation by repressing the activity of the iron-dependent Rli1 ribosome recycling factor, inhibiting mitochondrial translation, and affecting the translation of genes involved in heme biosynthesis. We also discovered a mechanism, whereby iron deficiency represses translation of MRS3 mRNA, encoding mitochondrial iron transporter, through increased expression of antisense long non-coding RNA. Together, our results reveal complex gene expression and protein synthesis remodeling in response to low iron showing how this important metal affects protein translation at multiple levels.

genetics↗