A Multisensor Framework Reveals Redox Constraints on Glycolysis in vivo

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Abstract

Genetically encoded biosensors have transformed the study of metabolism, yet measurements of individual metabolites often provide an incomplete view of pathway regulation. Here, we develop a multisensor framework in Caenorhabditis elegans neurons to interpret glycolytic dynamics and redox state in vivo . We combine biosensors for NADH/NAD⁺, fructose-1,6-bisphosphate, lactate, and pyruvate to resolve metabolic responses during hypoxia and redox perturbation.

To causally test how redox state modulates glycolysis in vivo , we cell-specifically expressed the NADH-producing enzyme Ec STH and the NADH oxidase Lb NOX to bidirectionally tune neuronal NADH/NAD⁺ balance. These perturbations revealed that redox modulation is sufficient to constrain or relieve lower glycolytic activity. Elevation of NADH/NAD⁺ promoted accumulation of upper glycolytic intermediates while suppressing lower glycolytic responses during energetic stress, consistent with inhibition at the NAD⁺-dependent GAPDH step. Conversely, oxidation of NADH relieved this constraint and shifted metabolite pools consistent with enhanced lower glycolytic activity. Elevated NADH/NAD⁺ ratios also impaired synaptic vesicle organization, linking redox-mediated glycolytic inhibition to neuronal function.

As a case study for how integrated biosensor approaches can provide semi-quantitative insight into pathway-level metabolic regulation, we genetically perturbed endogenous NADH recycling pathways. These experiments revealed a hierarchical organization of neuronal redox buffering, with lactate dehydrogenase (LDH-1) serving as the dominant route for NAD⁺ regeneration during hypoxia and glycerol-3-phosphate dehydrogenase (GPDH-2) providing a secondary compensatory pathway. Graded impairment of NADH recycling resulted in corresponding increases in fructose-1,6-bisphosphate accumulation and synaptic defects, consistent with progressive inhibition of lower glycolysis. Together, these results establish a tractable in vivo system to probe causal relationships between redox state, glycolytic dynamics, and cellular physiology.

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