Lactate potentiates NMDA receptor currents via an intracellular redox mechanism targeting GluN2B subunits: implications for synaptic plasticity

突触可塑性 细胞生物学 NMDA受体 长时程增强 化学 细胞内 生物物理学 生物化学 HEK 293细胞 钙信号传导 星形胶质细胞 生物 兴奋性突触后电位 生物学中的钙 AMPA受体 神经科学 蛋白激酶A 信号转导 谷氨酸受体 受体 免疫沉淀 磷酸化 神经传递 神经元 运动前神经元活动 膜片钳 激酶 糖酵解
作者
Hubert Fiumelli,Gabriel Herrera‐López,Fouad Lemtiri‐Chlieh,Lorène Mottier,John Girgis,Carine Ben‐Adiba,Pascal Jourdain,Nicolò Carrano,Hanan Mahmood,Amanda Ooi,Stefan T. Arold,Monica Di Luca,Fabrizio Gardoni,Pierre J. Magistretti
出处
期刊:The Journal of Physiology [Wiley]
卷期号:604 (10): 3934-3963 被引量:1
标识
DOI:10.1113/jp288960
摘要

Abstract Astrocyte‐derived lactate, through the astrocyte–neuron lactate shuttle, fuels neuronal energy demands and acts as a signalling molecule promoting synaptic plasticity and memory consolidation. Lactate regulates neuronal excitability and expression of genes related to synaptic plasticity and neuroprotection, but the molecular mechanisms remain unclear. Using patch‐clamp recordings in cultured cortical neurons we found that lactate enhances NMDA receptor currents (I NMDAR ), increasing their amplitude and decay time constant. Not reproduced by HCAR1 agonists, this modulation depends on monocarboxylate transporters and lactate dehydrogenase, requiring lactate entry, metabolic conversion to pyruvate and NADH formation within neurons. Disruption of intracellular calcium dynamics or inhibition of Ca 2+ /calmodulin‐dependent protein kinase II (CaMKII) diminishes lactate's effects on I NMDAR . Two redox‐sensitive cysteine‐containing sequences in the intracellular C‐terminal domain of GluN2B subunit play a crucial role in the potentiation of NMDAR by lactate. Experiments in HEK cells demonstrate that functional CaMKII and GluN2B‐containing NMDARs are necessary for lactate's effects. Mutations in GluN2B, that disrupt either CaMKII binding or cysteine‐mediated redox regulation, abolish lactate's modulatory action. Immunoprecipitation experiments in neurons show that lactate promotes CaMKII‐GluN2B association, which is critical for increasing I NMDAR amplitude. Proximity ligation assays between GluN2B and PSD‐95 reveal that lactate induces GluN2B accumulation in dendritic spines, an effect a CaMKII inhibitor prevents. These findings elucidate a pathway whereby lactate enhances NMDAR function through metabolic conversion and redox‐sensitive interactions requiring CaMKII, linking astrocyte energy metabolism to synaptic modulation. image Key points Astrocytes produce lactate, traditionally seen as an energy source, which also acts as a signalling molecule in the brain, influencing memory and synaptic plasticity by modulating NMDA receptor (NMDAR) function. Lactate enhances NMDAR responses specifically by increasing current amplitude through changes in cellular redox balance, which requires the entry of lactate into neurons and its conversion to pyruvate, producing NADH. Lactate‐induced potentiation of NMDARs depends on calcium signalling involving Ca 2 + /calmodulin‐dependent protein kinase II (CaMKII), which interacts directly with the GluN2B subunit of the receptor. Lactate strengthens the interaction between CaMKII and GluN2B through redox‐sensitive cysteine residues in GluN2B, facilitating synaptic localization of this complex and enhancing synaptic responses. These findings reveal a molecular pathway by which lactate, produced by astrocytes, can significantly influence neuronal activity and synaptic function, linking brain metabolism with learning and memory processes.
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