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Region-specific regulation of voltage-gated intrinsic currents in the developing optic tectum of the Xenopus tadpole

机译:爪蟾t发育中的光学皮层中电压门控固有电流的区域特定调节

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摘要

Across the rostrocaudal (RC) axis of the Xenopus tadpole optic tectum exists a developmental gradient. This gradient has served as a useful model to study many aspects of synapse and dendrite maturation. To compliment these studies, we characterized how the intrinsic excitability, the ease in which a neuron can fire action potentials, might also be changing across the same axis. Whole-cell recordings from tectal neurons at different points along the RC axis revealed a graded increase in intrinsic excitability: compared with neurons at the caudal end of the tectum, neurons at the rostral end fired more action potentials in response to current injection and expressed greater peak Na+ and K+ currents, the major intrinsic currents in these neurons that underlie the action potential. We also observed, along the same axis and in the same direction, a previously described increase in the amount of synaptic drive received by individual neurons (Wu GY, Malinow R, Cline HT. Science 274: 972–976, 1996). Thus as synaptic activity ramps up across the RC axis, so does intrinsic excitability. The reduction of overall circuit activity induced a compensatory scaling up of peak Na+ and K+currents only in the caudal portion of the tectum, suggesting a region-specific, compensatory form of plasticity.
机译:横贯非洲爪蟾视锥的视杆尾(RC)轴存在发育梯度。该梯度已成为研究突触和树突成熟的许多方面的有用模型。为了补充这些研究,我们描述了内在的兴奋性,即神经元激发动作电位的难易程度,可能在同一轴上如何变化。沿RC轴在不同点处的顶盖神经元的全细胞记录显示内在兴奋性逐渐增加:与顶盖尾端的神经元相比,在鼻端的神经元响应当前的注射具有更多的动作电位,并表现出更大的动作电位Na +和K +峰值电流,这些神经元中的主要内在电流是动作电位的基础。我们还沿着相同的轴和相同的方向观察到,先前描述的单个神经元接受的突触驱动量增加(Wu GY,Malinow R,Cline HT。Science 274:972–976,1996)。因此,随着突触活动在RC轴上逐渐增加,内在兴奋性也随之增加。整体电路活动的减少仅在顶盖的尾部引起了峰值Na +和K +电流的补偿性放大,这表明可塑性是一种区域特定的补偿性形式。

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