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1
Severe hypoglycemia-induced sudden death is mediated by both cardiac arrhythmias and seizures.严重低血糖引起的猝死是由心律失常和癫痫发作共同介导的。
Am J Physiol Endocrinol Metab. 2018 Aug 1;315(2):E240-E249. doi: 10.1152/ajpendo.00442.2017. Epub 2018 Feb 27.
2
Liprin-α3 controls vesicle docking and exocytosis at the active zone of hippocampal synapses.脂质连接蛋白-α3 控制海马突触活性区囊泡的 docking 和胞吐作用。
Proc Natl Acad Sci U S A. 2018 Feb 27;115(9):2234-2239. doi: 10.1073/pnas.1719012115. Epub 2018 Feb 8.
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Molecular definitions of autophagy and related processes.自噬及相关过程的分子定义。
EMBO J. 2017 Jul 3;36(13):1811-1836. doi: 10.15252/embj.201796697. Epub 2017 Jun 8.
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Bassoon Controls Presynaptic Autophagy through Atg5.巴松管通过 Atg5 控制突触自噬。
Neuron. 2017 Feb 22;93(4):897-913.e7. doi: 10.1016/j.neuron.2017.01.026.
5
Therapeutic targeting of the pathological triad of extrasynaptic NMDA receptor signaling in neurodegenerations.针对神经退行性疾病中突触外NMDA受体信号传导病理三联征的治疗靶点。
J Exp Med. 2017 Mar 6;214(3):569-578. doi: 10.1084/jem.20161673. Epub 2017 Feb 16.
6
SHANK proteins: roles at the synapse and in autism spectrum disorder.SHANK 蛋白:在突触和自闭症谱系障碍中的作用。
Nat Rev Neurosci. 2017 Mar;18(3):147-157. doi: 10.1038/nrn.2016.183. Epub 2017 Feb 9.
7
GLUT4 Mobilization Supports Energetic Demands of Active Synapses.葡萄糖转运蛋白4(GLUT4)的转运可满足活跃突触的能量需求。
Neuron. 2017 Feb 8;93(3):606-615.e3. doi: 10.1016/j.neuron.2016.12.020. Epub 2017 Jan 19.
8
Conductive Hearing Loss Has Long-Lasting Structural and Molecular Effects on Presynaptic and Postsynaptic Structures of Auditory Nerve Synapses in the Cochlear Nucleus.传导性听力损失对蜗神经核听觉神经突触的突触前和突触后结构具有长期的结构和分子影响。
J Neurosci. 2016 Sep 28;36(39):10214-27. doi: 10.1523/JNEUROSCI.0226-16.2016.
9
Suppressed translation and ULK1 degradation as potential mechanisms of autophagy limitation under prolonged starvation.翻译抑制和ULK1降解作为长期饥饿下自噬限制的潜在机制。
Autophagy. 2016 Nov;12(11):2085-2097. doi: 10.1080/15548627.2016.1226733. Epub 2016 Sep 14.
10
ELKS controls the pool of readily releasable vesicles at excitatory synapses through its N-terminal coiled-coil domains.ELKS通过其N端卷曲螺旋结构域控制兴奋性突触处易于释放的囊泡池。
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营养限制通过可分离的 Bassoon 自噬降解和囊泡释放受损来影响突触前结构。

Nutrient limitation affects presynaptic structures through dissociable Bassoon autophagic degradation and impaired vesicle release.

机构信息

1 Institute of Anatomy and Cell Biology, Ulm University, Ulm, Germany.

2 International Graduate School in Molecular Medicine Ulm (IGradU), Ulm University, Ulm, Germany.

出版信息

J Cereb Blood Flow Metab. 2018 Nov;38(11):1924-1939. doi: 10.1177/0271678X18786356. Epub 2018 Jul 4.

DOI:10.1177/0271678X18786356
PMID:29972341
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6259322/
Abstract

Acute mismatch between metabolic requirements of neurons and nutrients/growth factors availability characterizes several neurological conditions such as traumatic brain injury, stroke and hypoglycemia. Although the effects of this mismatch have been investigated at cell biological level, the effects on synaptic structure and function are less clear. Since synaptic activity is the most energy-demanding neuronal function and it is directly linked to neuronal networks functionality, we have explored whether nutrient limitation (NL) affects the ultrastructure, function and composition of pre and postsynaptic terminals. We show that upon NL, presynaptic terminals show disorganized vesicle pools and reduced levels of the active zone protein Bassoon (but not of Piccolo). Moreover, NL triggers an impaired vesicle release, which is reversed by re-administration of glucose but not by the blockade of autophagic or proteasomal protein degradation. This reveals a dissociable correlation between presynaptic architecture and vesicle release, since restoring vesicle fusion does not necessarily depend from the rescue of Bassoon levels. Thus, our data show that the presynaptic compartment is highly sensitive to NL and the rescue of presynaptic function requires re-establishment of the metabolic supply rather than preventing local protein degradation.

摘要

神经元代谢需求与营养物质/生长因子供应之间的急性不匹配是几种神经状况的特征,如创伤性脑损伤、中风和低血糖。尽管已经在细胞生物学水平上研究了这种不匹配的影响,但对突触结构和功能的影响尚不清楚。由于突触活动是神经元功能中最耗能的,并且与神经元网络功能直接相关,我们探索了营养限制(NL)是否会影响前突触和后突触末梢的超微结构、功能和组成。我们发现,在 NL 后,突触前末梢显示出囊泡池紊乱和活性区蛋白 Bassoon(而不是 Piccolo)水平降低。此外,NL 引发囊泡释放受损,这可以通过重新给予葡萄糖来逆转,但不能通过阻断自噬或蛋白酶体蛋白降解来逆转。这揭示了突触前结构和囊泡释放之间的可分离相关性,因为恢复囊泡融合并不一定依赖于 Bassoon 水平的恢复。因此,我们的数据表明,突触前区室对 NL 非常敏感,并且恢复突触前功能需要重新建立代谢供应,而不是防止局部蛋白降解。