bioRxiv Science⌕ Search

Biology subjects

Yunta-Sanchez, S.

Publications and source records attributed to Yunta-Sanchez, S..

2 recordsLinked to original sources

Mitochondrial pyruvate import in astrocytes links anaplerosis to seizure resistance

Astrocytes are glycolytic cells that convert a substantial fraction of glucose-derived pyruvate into lactate, a metabolite implicated in supporting neuronal energy demand and modulating excitability, plasticity and memory. This view has placed astrocytic lactate production and export at the centre of astrocyte-neuron metabolic coupling, but whether mitochondrial pyruvate utilization in astrocytes is dispensable in vivo or fulfils an essential function in the intact brain remains unknown. Here we show that adult astrocyte-specific deletion of Mpc2, encoding an obligatory mitochondrial pyruvate carrier subunit, causes motor deficits, neuronal hyperexcitability and seizure-associated lethality. Metabolic profiling revealed pyruvate diversion toward alanine as an unsuccessful compensatory bypass, together with impaired tricarboxylic acid-cycle metabolism and an imbalance in neurotransmitter-related pools, including glutamate, glutamine and {gamma}-aminobutyric acid. Thus, astrocytic mitochondrial pyruvate import is not primarily required for bioenergetic purposes but acts as a non-redundant anaplerotic gate that maintains neurotransmitter homeostasis, excitation-inhibition balance and seizure resistance in vivo.

neuroscience↗

Astrocytic glycolysis attenuates mitochondrial efficiency to preserve cognition

Astrocytic glycolysis is tightly coupled to neurotransmission and thought to be essential for neurological health. However, the metabolic adaptations that enable astrocytes to maintain a durable glycolytic profile without compromising viability are elusive. Here, using in vivo approaches including cell-specific gene expression disruption, metabolic flux analyses and behavioral tests in mice, we addressed this issue. We found that Pfkfb3 (6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase-3) is instrumental in maintaining the astrocytic glycolytic phenotype. Importantly, astrocytic glycolysis sustained by Pfkfb3 is required for normal cognitive performance. Mechanistically, ATP generated through glycolysis is consumed by mitochondria, via the reverse mode of ATP synthase, to conserve the proton gradient across the inner mitochondrial membrane. This enables mitochondria to attenuate pyruvate decarboxylation, tricarboxylic acid cycle and electron transport chain activity, thereby preserving pyruvate for conversion into lactate and delivery to neurons. These findings reveal that astrocytes sacrifice mitochondrial bioenergetic efficiency as a previously underappreciated strategy to support cognition.

cell biology↗