首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >The basal level of intracellular calcium gates the activation of phosphoinositide 3-kinase-Akt signaling by brain-derived neurotrophic factor in cortical neurons.
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The basal level of intracellular calcium gates the activation of phosphoinositide 3-kinase-Akt signaling by brain-derived neurotrophic factor in cortical neurons.

机译:细胞内钙的基础水平通过皮层神经元中脑源性神经营养因子控制磷酸肌醇3-激酶-Akt信号的激活。

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摘要

Brain-derived neurotrophic factor (BDNF) mediates survival and neuroplasticity through the activation of phosphoinositide 3-kinase-Akt pathway. Although previous studies suggested the roles of mitogen-activated protein kinase, phospholipase C-gamma-mediated intracellular calcium ([Ca2+]i) increase, and extracellular calcium influx in regulating Akt activation, the cellular mechanisms are largely unknown. We demonstrated that sub-nanomolar BDNF significantly induced Akt activation in developing cortical neurons. The TrkB-dependent Akt phosphorylation at S473 and T308 required only phosphoinositide 3-kinase, but not phospholipase C and mitogen-activated protein kinase activity. Blocking NMDA receptors, L-type voltage-gated calcium channels, and chelating extracellular calcium by EGTA failed to block BDNF-induced Akt phosphorylation. In contrast, chelating [Ca2+]i by 1,2-bis(o-aminophenoxy)ethane-N,N,N ',N '-tetraacetic acid-acetoxymethyl ester (BAPTA-AM) abolished Akt phosphorylation. Interestingly, sub-nanomolar BDNF did not stimulate [Ca2+]i increase under our culture conditions. Together with that NMDA- and membrane depolarization-induced [Ca2+]i increase did not activate Akt, we conclude that the basal level of [Ca2+]i gates BDNF function. Furthermore, inhibiting calmodulin by W13 suppressed Akt phosphorylation. On the other hand, inhibition of protein phosphatase 1 by okadaic acid and tautomycin rescued Akt phosphorylation in BAPTA-AM and W13-treated neurons. We further demonstrated that the phosphorylation of phosphoinositide-dependent kinase-1 did not correlate with Akt phosphorylation at T308. Our results suggested novel roles of basal [Ca2+]i, rather than activity-induced calcium elevation, in BDNF-Akt signaling.
机译:脑源性神经营养因子(BDNF)通过磷酸肌醇3-激酶-Akt途径的活化介导存活和神经可塑性。尽管先前的研究表明有丝分裂原激活的蛋白激酶,磷脂酶C-γ介导的细胞内钙([Ca2 +] i)增加和细胞外钙内流在调节Akt激活中的作用,但细胞机制尚不清楚。我们证明了亚纳摩尔的BDNF显着诱导发育中的皮质神经元的Akt激活。在S473和T308处依赖TrkB的Akt磷酸化仅需要磷酸肌醇3激酶,而不需要磷脂酶C和丝裂原激活的蛋白激酶活性。 EGTA阻断NMDA受体,L型电压门控钙通道和螯合细胞外钙均未能阻断BDNF诱导的Akt磷酸化。相反,通过1,2-双(邻氨基苯氧基)乙烷-N,N,N',N'-四乙酸-乙酰氧基甲基酯(BAPTA-AM)螯合[Ca2 +] i消除了Akt磷酸化。有趣的是,在我们的培养条件下,亚纳摩尔的BDNF不会刺激[Ca2 +] i的增加。连同NMDA和膜去极化诱导的[Ca2 +] i的增加并未激活Akt,我们得出结论,[Ca2 +] i的基础水平决定了BDNF的功能。此外,通过W13抑制钙调蛋白可抑制Akt磷酸化。另一方面,冈田酸和互变霉素对蛋白质磷酸酶1的抑制作用可挽救BAPTA-AM和W13处理的神经元中的Akt磷酸化。我们进一步证明,磷酸肌醇依赖性激酶-1的磷酸化与T308处的Akt磷酸化不相关。我们的结果表明在BDNF-Akt信号传导中,基础[Ca2 +] i的新作用,而不是活性诱导的钙升高。

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