首页> 美国卫生研究院文献>The Journal of Neuroscience >Voltage-Activated Calcium Currents in Rat Retinal Ganglion CellsIn Situ: Changes during Prenatal and Postnatal Development
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Voltage-Activated Calcium Currents in Rat Retinal Ganglion CellsIn Situ: Changes during Prenatal and Postnatal Development

机译:大鼠视网膜神经节细胞中电压激活的钙电流:产前和产后发育过程中的变化。

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摘要

Voltage-activated calcium currents (ICa) are one way by which calcium influx into neurons is mediated. To investigate changes in kinetic properties of ICa during neuronal development and to correlate possible kinetic changes with specific differentiation processes, the ICa of retinal ganglion cells (RGCs) was recorded with the perforated patch-clamp technique in rat retinal slices and in whole mounts at different prenatal and postnatal stages.ICa density increased between embryonic day (E) 20 and the adult stage, paralleled by a shift in activation of the ω-conotoxin GVIA-sensitive ICa toward more negative membrane potentials. Furthermore, developmental alterations were observed in ICa inactivation rate during a 120 msec test pulse and in steady-state inactivation ofICa. The most striking feature inICa kinetics was a transient slowing of calcium current deactivation, which peaked at postnatal day (P)3–5 and affected all ICa subtypes.Although the shift in activation and the decreased inactivation rate ofICa can be explained by differential regulation of distinct calcium channel subtypes, it is more likely that a more general alteration of the cells’ functional state was the underlying factor in alterations in steady-state inactivation and current deactivation of ICa.Alterations in the ω-conotoxin GVIA-sensitive and the toxin-resistant currents temporarily coincide with dendritic differentiation, and it is tempting to speculate about their role in network formation in the inner retina. In contrast, alterations in steady-state inactivation and current deactivation may be involved in the regulation of RGC survival, because they occur during the period of programmed cell death in the ganglion cell layer.In conclusion, distinct time windows of alterations in calcium channel properties were found, and this study has provided a basis for performing functional assays to clarify in detail the developmental process to which these alterations are related.
机译:电压激活的钙电流(ICa)是介导钙流入神经元的一种方式。为了研究神经元发育过程中ICa动力学特性的变化并将可能的动力学变化与特定的分化过程相关联,采用穿孔膜片钳技术记录了大鼠视网膜切片和不同位置的整个贴片中的视网膜神经节细胞(RGCs)的ICa。在胚胎第20天到成年期之间,ICa密度增加,与此同时,ω-芋螺毒素GVIA敏感性ICa的活化朝着更负的膜电位转变。此外,在120毫秒的测试脉冲期间以及在ICa的稳态灭活过程中,观察到ICa灭活率的变化。 ICa动力学最显着的特征是钙电流失活的短暂减慢,在出生后第3-5天达到峰值,并影响了所有ICa亚型。尽管激活的转变和ICa失活率的降低可以通过对Ica的不同调节来解释。不同的钙通道亚型,更可能是细胞功能状态的更普遍改变是ICa稳态失活和电流失活改变的潜在因素.ω-芋螺毒素GVIA敏感和毒素-电阻电流暂时与树突状分化相吻合,人们很容易推测它们在视网膜内部网络形成中的作用。相比之下,稳态失活和电流失活的改变可能参与了RGC存活的调节,因为它们发生在神经节细胞层的程序性细胞死亡期间。被发现,并且这项研究为进行功能测定提供了基础,以详细阐明这些改变与之相关的发育过程。

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