Rapid and reversible optogenetic silencing of synaptic transmission by clustering of synaptic vesicles

Dennis Vettkötter,Martin Schneider, Brady D. Goulden,Holger Dill,Jana Liewald, Sandra Zeiler, Julia Guldan, Yilmaz Arda Ateş,Shigeki Watanabe,Alexander Gottschalk

Nature Communications(2022)

引用 2|浏览12
暂无评分
摘要
Acutely silencing specific neurons informs about their functional roles in circuits and behavior. Existing optogenetic silencers include ion pumps, channels, metabotropic receptors, and tools that damage the neurotransmitter release machinery. While the former hyperpolarize the cell, alter ionic gradients or cellular biochemistry, the latter allow only slow recovery, requiring de novo synthesis. Thus, tools combining fast activation and reversibility are needed. Here, we use light-evoked homo-oligomerization of cryptochrome CRY2 to silence synaptic transmission, by clustering synaptic vesicles (SVs). We benchmark this tool, optoSynC, in Caenorhabditis elegans , zebrafish, and murine hippocampal neurons. optoSynC clusters SVs, observable by electron microscopy. Locomotion silencing occurs with tau on ~7.2 s and recovers with tau off ~6.5 min after light-off. optoSynC can inhibit exocytosis for several hours, at very low light intensities, does not affect ion currents, biochemistry or synaptic proteins, and may further allow manipulating different SV pools and the transfer of SVs between them.
更多
查看译文
关键词
reversible optogenetic silencing,synaptic transmission
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要