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首页> 外文期刊>Journal of Neuroscience Research >Lack of appropriate stoichiometry: Strong evidence against an energetically important astrocyte–neuron lactate shuttle in brain
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Lack of appropriate stoichiometry: Strong evidence against an energetically important astrocyte–neuron lactate shuttle in brain

机译:缺乏适当的化学计量:强大的证据,针对大脑中大量重要的星形细胞 - 神经元乳酸乳蛋白

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Glutamate‐stimulated aerobic glycolysis in astrocytes coupled with lactate shuttling to neurons where it can be oxidized was proposed as a mechanism to couple excitatory neuronal activity with glucose utilization (CMR glc ) during brain activation. From the outset, this model was not viable because it did not fulfill critical stoichiometric requirements: (i) Calculated glycolytic rates and measured lactate release rates were discordant in cultured astrocytes. (ii) Lactate oxidation requires oxygen consumption, but the oxygen–glucose index (OGI, calculated as CMR O2 /CMR glc ) fell during activation in human brain, and the small rise in CMR O2 could not fully support oxidation of lactate produced by disproportionate increases in CMR glc . (iii) Labeled products of glucose metabolism are not retained in activated rat brain, indicating rapid release of a highly labeled, diffusible metabolite identified as lactate, thereby explaining the CMR glc –CMR O2 mismatch. Additional independent lines of evidence against lactate shuttling include the following: astrocytic oxidation of glutamate after its uptake can help “pay” for its uptake without stimulating glycolysis; blockade of glutamate receptors during activation in vivo prevents upregulation of metabolism and lactate release without impairing glutamate uptake; blockade of β‐adrenergic receptors prevents the fall in OGI in activated human and rat brain while allowing glutamate uptake; and neurons upregulate glucose utilization in vivo and in vitro under many stimulatory conditions. Studies in immature cultured cells are not appropriate models for lactate shuttling in adult brain because of their incomplete development of metabolic capability and astrocyte–neuron interactions. Astrocyte–neuron lactate shuttling does not make large, metabolically significant contributions to energetics of brain activation. ? 2017 Wiley Periodicals, Inc.
机译:谷族酸盐刺激的星形胶质细胞中的有氧糖醇分解,乳酸乳酸血液杂交至神经元,其中脑激活期间致血糖利用(CMR GLC)对兴奋性神经元活性的机制。从一开始,该模型不可行,因为它没有满足关键化学计量要求:(i)计算的糖酵解率和测定的乳酸释放速率在培养的星形胶质细胞中不和谐。 (ii)乳酸氧化需要氧气消耗,但在人脑中激活期间,氧 - 葡萄糖指数(计算为CMR O2 / CMR GLC)的氧 - 葡萄糖指数下降,CMR O2的小升高无法完全支持不成比例产生的乳酸乳酸盐CMR GLC增加。 (iii)葡萄糖代谢的标记产物不保留在活性大鼠脑中,表明鉴定为乳酸的高度标记,扩散代谢物的快速释放,从而解释了CMR GLC -CMR O 2不匹配。额外的独立证据针对乳酸梭血液包括以下内容:在其摄取后,谷氨酸的星形胶质氧化可以帮助“支付”而不会刺激糖溶解;在体内激活过程中阻断谷氨酸受体可防止代谢和乳酸释放的上调而不会损害谷氨酸摄取;阻断β-肾上腺素能受体可防止在活化的人和大鼠脑中的ogi落入ogi,同时允许谷氨酸摄取;并且神经元在许多刺激条件下使体内和体外体内的葡萄糖利用率上调。未成熟培养细胞的研究是由于其不完全发展代谢能力和星形胶质细胞 - 神经元相互作用,不成熟的细胞在成人脑中的乳酸梭梭模型。星形胶质细胞 - 神经元乳酸血管梭在脑激活的能量学中没有大量的,代谢的重大贡献。还2017年Wiley期刊,Inc。

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