Division of Biology, Indian Institute of Science Education and Research, Pune, Maharashtra, India.
Computational Neurobiology Laboratory, Salk Institute for Biological Studies, La Jolla, CA, USA.
Commun Biol. 2021 Feb 23;4(1):241. doi: 10.1038/s42003-021-01761-7.
Short-term plasticity preserves a brief history of synaptic activity that is communicated to the postsynaptic neuron. This is primarily regulated by a calcium signal initiated by voltage dependent calcium channels in the presynaptic terminal. Imaging studies of CA3-CA1 synapses reveal the presence of another source of calcium, the endoplasmic reticulum (ER) in all presynaptic terminals. However, the precise role of the ER in modifying STP remains unexplored. We performed in-silico experiments in synaptic geometries based on reconstructions of the rat CA3-CA1 synapses to investigate the contribution of ER. Our model predicts that presynaptic ER is critical in generating the observed short-term plasticity profile of CA3-CA1 synapses and allows synapses with low release probability to operate more reliably. Blocking the ER lowers facilitation in a manner similar to what has been previously characterized in animal models of Alzheimer's disease and underscores the important role played by presynaptic stores in normal function.
短期可塑性保留了突触活动的短暂历史,这些信息被传递到突触后神经元。这主要是通过电压依赖性钙通道在突触前末梢引发的钙信号来调节的。对 CA3-CA1 突触的成像研究揭示了另一种钙源的存在,即内质网 (ER) 在所有突触前末梢中。然而,ER 在修饰 STP 中的精确作用仍未得到探索。我们在基于大鼠 CA3-CA1 突触重建的突触几何结构中进行了计算机模拟实验,以研究 ER 的贡献。我们的模型预测,突触前 ER 对于产生观察到的 CA3-CA1 突触的短期可塑性特征至关重要,并允许具有低释放概率的突触更可靠地运作。阻断 ER 会以类似于先前在阿尔茨海默病动物模型中所描述的方式降低易化作用,并强调了突触前储存库在正常功能中所发挥的重要作用。