Dynamics of Neuromuscular Transmission Reproduced by Calcium-Dependent and Reversible Serial Transitions in the Vesicle Fusion Complex

IF 2.8 4区 医学 Q2 NEUROSCIENCES Frontiers in Synaptic Neuroscience Pub Date : 2022-02-15 DOI:10.3389/fnsyn.2021.785361
A. Martínez-Valencia, G. Ramírez‐Santiago, F. F. De-Miguel
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引用次数: 1

Abstract

Neuromuscular transmission, from spontaneous release to facilitation and depression, was accurately reproduced by a mechanistic kinetic model of sequential maturation transitions in the molecular fusion complex. The model incorporates three predictions. First, calcium-dependent forward transitions take vesicles from docked to preprimed to primed states, followed by fusion. Second, prepriming and priming are reversible. Third, fusion and recycling are unidirectional. The model was fed with experimental data from previous studies, whereas the backward (β) and recycling (ρ) rate constant values were fitted. Classical experiments were successfully reproduced with four transition states in the model when every forward (α) rate constant had the same value, and both backward rate constants were 50–100 times larger. Such disproportion originated an abruptly decreasing gradient of resting vesicles from docked to primed states. By contrast, a three-state version of the model failed to reproduce the dynamics of transmission by using the same set of parameters. Simulations predict the following: (1) Spontaneous release reflects primed to fusion spontaneous transitions. (2) Calcium elevations synchronize the series of forward transitions that lead to fusion. (3) Facilitation reflects a transient increase of priming following the calcium-dependent maturation transitions. (4) The calcium sensors that produce facilitation are those that evoke the transitions form docked to primed states. (5) Backward transitions and recycling restore the resting state. (6) Depression reflects backward transitions and slow recycling after intense release. Altogether, our results predict that fusion is produced by one calcium sensor, whereas the modulation of the number of vesicles that fuse depends on the calcium sensors that promote the early transition states. Such finely tuned kinetics offers a mechanism for collective non-linear transitional adaptations of a homogeneous vesicle pool to the ever-changing pattern of electrical activity in the neuromuscular junction.
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在囊泡融合复合体中,钙依赖和可逆的系列转变再现神经肌肉传递的动力学
神经肌肉传递,从自发释放到促进和抑制,通过分子融合复合体中顺序成熟转变的机制动力学模型准确再现。该模型包含三个预测。首先,钙依赖性正向转变将囊泡从对接状态带到预处理状态再带到启动状态,然后是融合。第二,预启动和启动是可逆的。第三,融合和回收是单向的。该模型采用了先前研究的实验数据,而反向(β)和回收(ρ)速率常数值得到了拟合。当每个正向(α)速率常数都有相同的值,并且两个反向速率常数都大50–100倍时,模型中的四个过渡态成功地再现了经典实验。这种不均衡导致静息囊泡从对接状态到启动状态的梯度突然下降。相比之下,该模型的三态版本未能通过使用相同的一组参数来再现变速器的动力学。模拟预测如下:(1)自发释放反映了从启动到聚变的自发跃迁。(2) 钙的升高使导致融合的一系列向前过渡同步。(3) 促进反应了钙依赖性成熟转变后启动的短暂增加。(4) 产生促进作用的钙传感器是那些引起从对接状态到引发状态转变的钙传感器。(5) 向后过渡和循环使用可恢复静止状态。(6) 抑郁症反映了强烈释放后的后向转变和缓慢的循环。总之,我们的结果预测融合是由一个钙传感器产生的,而融合囊泡数量的调节取决于促进早期过渡状态的钙传感器。这种精细调节的动力学为均质囊泡池对神经肌肉接头中不断变化的电活动模式的集体非线性过渡适应提供了一种机制。
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来源期刊
CiteScore
7.10
自引率
2.70%
发文量
74
审稿时长
14 weeks
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