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Presynaptic and Postsynaptic NMDA Receptors Mediate Distinct Effects of Brain-Derived Neurotrophic Factor on Synaptic Transmission

机译:突触前和突触后NMDA受体介导脑源性神经营养因子对突触传递的不同作用。

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摘要

In addition to its effects on neuronal survival and differentiation, brain-derived neurotrophic factor (BDNF) plays an important role in modulating synaptic transmission and plasticity in many brain areas, most notably the neocortex and hippocampus. These effects may underlie a role for BDNF in learning and memory as well as developmental plasticity. Consistent with localization of the tropomyosin-related kinase B receptor to both sides of the synapse, BDNF appears to have pre- and postsynaptic effects, but the underlying cellular mechanisms are unclear and it is not known whether pre- and postsynaptic modulations by BDNF occur simultaneously. To address these issues, we recorded dual-component (α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid [AMPA] and N-methyl-d-aspartate [NMDA]) miniature excitatory postsynaptic currents (mEPSCs) from cortical and hippocampal pyramidal neurons and dentate gyrus granule cells from acute brain slices. BDNF had no effect on the fast component of mEPSC decay or on the peak amplitude, suggesting that BDNF did not modulate postsynaptic AMPA receptors, although BDNF rapidly modulated NMDA receptors, as seen by an enhancement of the slow component of mEPSC decay that was prevented by blocking postsynaptic NMDA receptors. At the same time, BDNF acted presynaptically to enhance mEPSC frequency. Surprisingly, the effect on frequency was also NMDA receptor dependent, but required activation of presynaptic, not postsynaptic, NMDA receptors. BDNF also enhanced action potential–dependent glutamate release via presynaptic NMDA receptors, an effect that was unmasked when voltage-gated calcium channels were partially inhibited. Our results indicate that BDNF acutely modulates presynaptic release and postsynaptic responsiveness through simultaneous effects on pre- and postsynaptic NMDA receptors.
机译:除对神经元存活和分化的影响外,脑源性神经营养因子(BDNF)在调节许多大脑区域(尤其是新皮层和海马体)的突触传递和可塑性中起着重要作用。这些影响可能是BDNF在学习和记忆以及发育可塑性中的作用的基础。与原肌球蛋白相关的激酶B受体在突触两侧的定位一致,BDNF似乎具有突触前和突触后作用,但潜在的细胞机制尚不清楚,尚不清楚BDNF是否同时发生突触前和突触后调节。为了解决这些问题,我们记录了双组分(α-氨基-3-羟基-5-甲基-4-异恶唑丙酸[AMPA]和N-甲基-d-天冬氨酸[NMDA])的微型兴奋性突触后电流(mEPSC)来自急性脑切片的皮质和海马锥体神经元和齿状回颗粒细胞。 BDNF对mEPSC衰减的快速成分或峰值幅度没有影响,这表明BDNF不能调节突触后AMPA受体,尽管BDNF可以快速调节NMDA受体,这可以通过mEPSC衰减的缓慢成分的增强来解决,而这可以通过防止阻断突触后NMDA受体。同时,BDNF突触地增强mEPSC频率。令人惊讶地,对频率的影响也是NMDA受体依赖性的,但是需要激活突触前而不是突触后NMDA受体。 BDNF还通过突触前的NMDA受体增强了依赖于动作电位的谷氨酸盐的释放,当电压门控的钙离子通道被部分抑制时,这种作用不会被掩盖。我们的结果表明,BDNF通过同时影响突触前和突触后NMDA受体来急性调节突触前释放和突触后反应。

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