首页> 外文期刊>Frontiers in Molecular Neuroscience >Stable Density and Dynamics of Dendritic Spines of Cortical Neurons Across the Estrous Cycle While Expressing Differential Levels of Sensory-Evoked Plasticity
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Stable Density and Dynamics of Dendritic Spines of Cortical Neurons Across the Estrous Cycle While Expressing Differential Levels of Sensory-Evoked Plasticity

机译:皮质神经元树突棘在整个发情周期中的稳定密度和动力学,同时表达不同水平的感觉诱发可塑性

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Periodic oscillations of gonadal hormone levels during the estrous cycle exert effects on the female brain, impacting cognition and behavior. While previous research suggests that changes in hormone levels across the cycle affect dendritic spine dynamics in the hippocampus, little is known about the effects on cortical dendritic spines and previous studies showed contradictory results. In this in vivo imaging study, we investigated the impact of the estrous cycle on the density and dynamics of dendritic spines of pyramidal neurons in the primary somatosensory cortex of mice. We also examined if the induction of synaptic plasticity during proestrus, estrus, and metestrus/diestrus had differential effects on the degree of remodeling of synapses in this brain area. We used chronic two-photon excitation (2PE) microscopy during steady-state conditions and after evoking synaptic plasticity by whisker stimulation at the different stages of the cycle. We imaged apical dendritic tufts of layer 5 pyramidal neurons of naturally cycling virgin young female mice. Spine density, turnover rate (TOR), survival fraction, morphology, and volume of mushroom spines remained unaltered across the estrous cycle, and the values of these parameters were comparable with those of young male mice. However, while whisker stimulation of female mice during proestrus and estrus resulted in increases in the TOR of spines (74.2 ± 14.9% and 75.1 ± 12.7% vs. baseline, respectively), sensory-evoked plasticity was significantly lower during metestrus/diestrus (32.3 ± 12.8%). In males, whisker stimulation produced 46.5 ± 20% increase in TOR compared with baseline—not significantly different from female mice at any stage of the cycle. These results indicate that, while steady-state density and dynamics of dendritic spines of layer 5 pyramidal neurons in the primary somatosensory cortex of female mice are constant during the estrous cycle, the susceptibility of these neurons to sensory-evoked structural plasticity may be dependent on the stage of the cycle. Since dendritic spines are more plastic during proestrus and estrus than during metestrus/diestrus, certain stages of the cycle could be more suitable for forms of memory requiring de novo formation and elimination of spines and other stages for forms of memory where retention and/or repurposing of already existing synaptic connections is more pertinent.
机译:在发情周期中性腺激素水平的周期性波动会对女性大脑产生影响,影响认知和行为。尽管先前的研究表明整个周期内激素水平的变化会影响海马体中树突棘的动态,但对皮质树突棘的影响知之甚少,而先前的研究显示出相反的结果。在这项体内成像研究中,我们调查了动情周期对小鼠初级体感皮层中锥体神经元树突棘的密度和动力学的影响。我们还检查了在发情期,发情期和肠系膜/发情期中突触可塑性的诱导是否对该脑区域的突触重塑程度具有不同的影响。在稳态条件下以及在周期的不同阶段通过晶须刺激引起突触可塑性后,我们使用了慢性双光子激发(2PE)显微镜。我们对天然循环的处女幼鼠的第5层锥体神经元的顶端树突状簇进行了成像。在整个动情周期中,脊柱密度,周转率(TOR),存活分数,形态和蘑菇棘的体积均保持不变,并且这些参数的值与雄性雄性小鼠相当。然而,虽然在发情期和发情期对雌性小鼠进行晶须刺激会导致脊柱的TOR升高(分别比基线高74.2±14.9%和75.1±12.7%),但在睾丸/二胚期,感觉诱发的可塑性却明显降低(32.3 ±12.8%)。在雄性中,晶须刺激与基线相比使TOR升高46.5±20%,与该周期任何阶段的雌性小鼠无显着差异。这些结果表明,虽然雌性小鼠初级体感皮层中第5层锥体神经元的树突棘的稳态密度和动态在发情周期中是恒定的,但这些神经元对感官诱发的结构可塑性的敏感性可能取决于周期的阶段。由于树突棘在发情期和发情期比在发情期/发情期更具塑性,因此该周期的某些阶段可能更适合于需要从头形成和消除棘的记忆形式,而其他阶段则适合于保留和/或重新定位的记忆形式已经存在的突触连接的相关性更高。

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