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Bobo-Jimenez, V.

Publications and source records attributed to Bobo-Jimenez, V..

2 recordsLinked to original sources

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↗

Weak neuronal glycolysis sustains cognition and organismal fitness

The energy cost of neuronal activity is mainly sustained by glucose1,2. However, in an apparent paradox, neurons only weakly metabolize glucose through glycolysis3,4,5,6, a circumstance that can be accounted for by the constant degradation of 6-phosphofructo-2-kinase/fructose-2,6-bisphosphatase-3 (Pfkfb3)3,7,8, a key glycolysis-promoting enzyme. To evaluate the in vivo physiological significance of this hypo-glycolytic metabolism, here we genetically engineered mice with their neurons transformed into active glycolytic cells through Pfkfb3 expression. In vivo molecular, biochemical, and metabolic flux analyses of these neurons revealed an accumulation of anomalous mitochondria, complex I disassembly, bioenergetic deficiency and mitochondrial redox stress. Notably, glycolysis-mediated NAD+ reduction impaired sirtuin-dependent autophagy. Furthermore, these mice displayed cognitive decline and a metabolic syndrome that was mimicked by confining Pfkfb3 expression to hypothalamic neurons. Neuron-specific genetic ablation of mitochondrial redox stress corrected these alterations. Thus, the weak glycolytic nature of neurons is required to sustain higher-order organismal functions.

cell biology↗