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本文引用的文献

1
Active zone compaction correlates with presynaptic homeostatic potentiation.活性区致密化与突触前同型易化相关。
Cell Rep. 2021 Oct 5;37(1):109770. doi: 10.1016/j.celrep.2021.109770.
2
Stability of neocortical synapses across sleep and wake states during the critical period in rats.大鼠关键期睡眠和觉醒状态下新皮层突触的稳定性。
Elife. 2021 Jun 21;10:e66304. doi: 10.7554/eLife.66304.
3
Astrocytes close a motor circuit critical period.星形胶质细胞关闭运动回路的关键期。
Nature. 2021 Apr;592(7854):414-420. doi: 10.1038/s41586-021-03441-2. Epub 2021 Apr 7.
4
Structural and Functional Synaptic Plasticity Induced by Convergent Synapse Loss in the Neuromuscular Circuit.会聚性突触丢失诱导的神经肌肉回路的结构和功能突触可塑性。
J Neurosci. 2021 Feb 17;41(7):1401-1417. doi: 10.1523/JNEUROSCI.1492-20.2020. Epub 2021 Jan 5.
5
Sleep Promotes Downward Firing Rate Homeostasis.睡眠促进向下放电率的稳态。
Neuron. 2021 Feb 3;109(3):530-544.e6. doi: 10.1016/j.neuron.2020.11.001. Epub 2020 Nov 23.
6
The auxiliary glutamate receptor subunit dSol-1 promotes presynaptic neurotransmitter release and homeostatic potentiation.辅助谷氨酸受体亚基 dSol-1 促进突触前神经递质释放和同型突触增强。
Proc Natl Acad Sci U S A. 2020 Oct 13;117(41):25830-25839. doi: 10.1073/pnas.1915464117. Epub 2020 Sep 24.
7
Distinct Target-Specific Mechanisms Homeostatically Stabilize Transmission at Pre- and Post-synaptic Compartments.不同的靶点特异性机制通过稳态调节使突触前和突触后区室的传递稳定。
Front Cell Neurosci. 2020 Jun 26;14:196. doi: 10.3389/fncel.2020.00196. eCollection 2020.
8
Synaptic Plasticity Induced by Differential Manipulation of Tonic and Phasic Motoneurons in .不同强度调节紧张型和相位型运动神经元诱导的突触可塑性。
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Specific Isoforms of the Guanine-Nucleotide Exchange Factor dPix Couple Neuromuscular Synapse Growth to Muscle Growth.特定的鸟嘌呤核苷酸交换因子 dPix 异构体将神经肌肉突触生长与肌肉生长偶联。
Dev Cell. 2020 Jul 6;54(1):117-131.e5. doi: 10.1016/j.devcel.2020.05.015. Epub 2020 Jun 8.
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Presynaptic Homeostasis Opposes Disease Progression in Mouse Models of ALS-Like Degeneration: Evidence for Homeostatic Neuroprotection.突触前稳态拮抗 ALS 样退变小鼠模型中的疾病进展:对神经保护稳态的证据。
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突触稳态:在果蝇神经肌肉接点揭示的潜在可塑性。

Synaptic homeostats: latent plasticity revealed at the Drosophila neuromuscular junction.

机构信息

Department of Neurobiology, University of Southern California, Los Angeles, CA, 90089, USA.

出版信息

Cell Mol Life Sci. 2021 Apr;78(7):3159-3179. doi: 10.1007/s00018-020-03732-3. Epub 2021 Jan 15.

DOI:10.1007/s00018-020-03732-3
PMID:33449150
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8044042/
Abstract

Homeostatic signaling systems are fundamental forms of biological regulation that maintain stable functionality in a changing environment. In the nervous system, synapses are crucial substrates for homeostatic modulation, serving to establish, maintain, and modify the balance of excitation and inhibition. Synapses must be sufficiently flexible to enable the plasticity required for learning and memory but also endowed with the stability to last a lifetime. In response to the processes of development, growth, remodeling, aging, and disease that challenge synapses, latent forms of adaptive plasticity become activated to maintain synaptic stability. In recent years, new insights into the homeostatic control of synaptic function have been achieved using the powerful Drosophila neuromuscular junction (NMJ). This review will focus on work over the past 10 years that has illuminated the cellular and molecular mechanisms of five homeostats that operate at the fly NMJ. These homeostats adapt to loss of postsynaptic neurotransmitter receptor functionality, glutamate imbalance, axonal injury, as well as aberrant synaptic growth and target innervation. These diverse homeostats work independently yet can be simultaneously expressed to balance neurotransmission. Growing evidence from this model glutamatergic synapse suggests these ancient homeostatic signaling systems emerged early in evolution and are fundamental forms of plasticity that also function to stabilize mammalian cholinergic NMJs and glutamatergic central synapses.

摘要

内稳态信号系统是维持变化环境中稳定功能的基本生物调节形式。在神经系统中,突触是内稳态调节的关键底物,用于建立、维持和调节兴奋和抑制的平衡。突触必须足够灵活,以实现学习和记忆所需的可塑性,但也必须具有稳定性以维持一生。为了应对发育、生长、重塑、衰老和疾病等挑战突触的过程,潜在的适应性可塑性形式被激活以维持突触稳定性。近年来,利用强大的果蝇肌神经接点 (NMJ) ,在突触功能的内稳态控制方面取得了新的见解。这篇综述将重点介绍过去 10 年来阐明在果蝇 NMJ 起作用的五种内稳态的细胞和分子机制的工作。这些内稳态适应于突触后神经递质受体功能的丧失、谷氨酸失衡、轴突损伤以及异常的突触生长和靶神经支配。这些不同的内稳态独立工作,但可以同时表达以平衡神经传递。来自这个模型谷氨酸能突触的越来越多的证据表明,这些古老的内稳态信号系统在进化早期出现,是稳定哺乳动物胆碱能 NMJ 和谷氨酸能中枢突触的基本形式的可塑性。