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Homeostatic scaling of active zone scaffolds maintains global synaptic strength

机译:活动区支架的稳态缩放保持整体突触强度

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摘要

Synaptic terminals grow and retract throughout life, yet synaptic strength is maintained within stable physiological ranges. To study this process, we investigated Drosophila endophilin (endo) mutants. Although active zone (AZ) number is doubled in endo mutants, a compensatory reduction in their size homeostatically adjusts global neurotransmitter output to maintain synaptic strength. We find an inverse adaptation in rab3 mutants. Additional analyses using confocal, STED, and electron microscopy reveal a stoichiometric tuning of AZ scaffolds and nanoarchitecture. Axonal transport of synaptic cargo via the lysosomal kinesin adapter Arl8 regulates AZ abundance to modulate global synaptic output and sustain the homeostatic potentiation of neurotransmission. Finally, we find that this AZ scaling can interface with two independent homeostats, depression and potentiation, to remodel AZ structure and function, demonstrating a robust balancing of separate homeostatic adaptations. Thus, AZs are pliable substrates with elastic and modular nanostructures that can be dynamically sculpted to stabilize and tune both local and global synaptic strength.
机译:突触终末生长和缩回,但突触强度仍维持在稳定的生理范围内。为了研究此过程,我们研究了果蝇内吞蛋白(内切)突变体。尽管活性区(AZ)数目在内突变体中增加了一倍,但其体内平衡大小的补偿性减少会调节整体神经递质输出,以维持突触强度。我们发现rab3突变体的逆适应。使用共聚焦,STED和电子显微镜进行的其他分析揭示了AZ支架和纳米结构的化学计量调整。通过溶酶体驱动蛋白适配器Arl8的突触货物的轴突运输调节AZ丰度,以调节整体突触输出并维持神经传递的稳态增强。最后,我们发现这种AZ缩放可以与两个独立的稳态器(压抑和增强)交互作用,以重塑AZ的结构和功能,从而证明了各个稳态调节的稳健平衡。因此,AZ是具有弹性和模块化纳米结构的柔韧基材,可以动态雕刻以稳定和调整局部和全局突触强度。

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