Quantitative super-resolution imaging of Bruchpilot distinguishes active zone states

2014 | journal article. A publication with affiliation to the University of Göttingen.

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​Quantitative super-resolution imaging of Bruchpilot distinguishes active zone states​
Ehmann, N.; van de Linde, S.; Alon, A.; Ljaschenko, D.; Keung, X. Z.; Holm, T. & Rings, A. et al.​ (2014) 
Nature Communications5 art. 4650​.​ DOI: https://doi.org/10.1038/ncomms5650 

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Authors
Ehmann, Nadine; van de Linde, Sebastian; Alon, Amit; Ljaschenko, Dmitrij; Keung, Xi Zhen; Holm, Thorge; Rings, Annika; DiAntonio, Aaron; Hallermann, Stefan; Ashery, Uri; Heckmann, Manfred; Sauer, Markus; Kittel, Robert Johannes
Abstract
The precise molecular architecture of synaptic active zones (AZs) gives rise to different structural and functional AZ states that fundamentally shape chemical neurotransmission. However, elucidating the nanoscopic protein arrangement at AZs is impeded by the diffraction-limited resolution of conventional light microscopy. Here we introduce new approaches to quantify endogenous protein organization at single-molecule resolution in situ with super-resolution imaging by direct stochastic optical reconstruction microscopy (dSTORM). Focusing on the Drosophila neuromuscular junction (NMJ), we find that the AZ cytomatrix (CAZ) is composed of units containing similar to 137 Bruchpilot (Brp) proteins, three quarters of which are organized into about 15 heptameric clusters. We test for a quantitative relationship between CAZ ultrastructure and neurotransmitter release properties by engaging Drosophila mutants and electrophysiology. Our results indicate that the precise nanoscopic organization of Brp distinguishes different physiological AZ states and link functional diversification to a heretofore unrecognized neuronal gradient of the CAZ ultrastructure.
Issue Date
2014
Status
published
Publisher
Nature Publishing Group
Journal
Nature Communications 
ISSN
2041-1723

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