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Phenotypic plasticity in Periplaneta americana photoreceptors

机译:美洲仙plane感光细胞的表型可塑性

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摘要

Plasticity is a crucial aspect of neuronal physiology essential for proper development and continuous functional optimization of neurons and neural circuits. Despite extensive studies of different visual systems, little is known about plasticity in mature microvillar photoreceptors. Here we investigate changes in electrophysiological properties and gene expression in photoreceptors of the adult cockroach, Periplaneta americana, after exposure to constant light (CL) or constant dark (CD) for several months. After CL, we observed a decrease in mean whole-cell capacitance, a proxy for cell membrane area, from 362 ± 160 to 157 ± 58 pF, and a decrease in absolute sensitivity. However, after CD, we observed an increase in capacitance to 561 ± 155 pF and an increase in absolute sensitivity. Small changes in the expression of light-sensitive channels and signaling molecules were detected in CD retinas, together with a substantial increase in the expression of the primary green-sensitive opsin (GO1). Accordingly, light-induced currents became larger in CD photoreceptors. Even though normal levels of GO1 expression were retained in CL photoreceptors, light-induced currents became much smaller, suggesting that factors other than opsin are involved. Latency of phototransduction also decreased significantly in CL photoreceptors. Sustained voltage-activated K+ conductance was not significantly different between the experimental groups. The reduced capacitance of CL photoreceptors expanded their bandwidth, increasing the light-driven voltage signal at high frequencies. However, voltage noise was also amplified, probably because of unaltered expression of TRPL channels. Consequently, information transfer rates were lower in CL than in control or CD photoreceptors. These changes in whole-cell capacitance and electrophysiological parameters suggest that structural modifications can occur in the photoreceptors to adapt their function to altered environmental conditions. The opposing patterns of modifications in CL and CD photoreceptors differ profoundly from previous findings in Drosophila melanogaster photoreceptors.
机译:可塑性是神经元生理学的关键方面,对于神经元和神经回路的正常发育和持续功能优化至关重要。尽管对不同的视觉系统进行了广泛的研究,但对于成熟的微绒毛感光体的可塑性知之甚少。在这里,我们研究了成年蟑螂美洲大i在暴露于恒定光(CL)或恒定暗(CD)数月后,其电生理特性和基因受体中电生理特性的变化。 CL后,我们观察到平均全细胞电容(代表细胞膜面积的代表)从362±160降低到157±58 pF,并且绝对灵敏度降低。但是,在CD之后,我们观察到电容增加到561±155 pF,并且绝对灵敏度增加。在CD视网膜中检测到光敏通道和信号分子表达的细微变化,同时初级绿色敏感视蛋白(GO1)的表达也显着增加。因此,CD感光体中的光感应电流变大。即使CL感光体中保持了正常的GO1表达水平,光诱导的电流却变得小得多,这表明与视蛋白无关的因素也参与其中。 CL感光体的光转导潜伏期也显着降低。实验组之间持续的电压激活的K + 电导没有显着差异。 CL感光体的减小的电容扩展了其带宽,从而增加了高频下的光驱动电压信号。但是,电压噪声也被放大了,这可能是因为TRPL通道的表达没有改变。因此,CL中的信息传输率低于对照或CD感光器。全细胞电容和电生理参数的这些变化表明,感光体中可能发生结构修饰,以使其功能适应变化的环境条件。 CL和CD感光体的相反修饰方式与黑腹果蝇感光体的先前发现有很大不同。

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