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Molecular mechanisms of atlastin-mediated ER membrane fusion revealed by a FRET-based single-vesicle fusion assay

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Abstract
Homotypic fusion of endoplasmic reticulum membranes is driven by atlastin GTPases; however, the underlying mechanism remains largely unknown. Here, using a FRET-based single-vesicle fusion assay with liposomes bearing the yeast atlastin Sey1p, we investigated the molecular mechanisms of atlastin-mediated membrane tethering and fusion. Although Sey1p-bearing proteoliposomes frequently underwent membrane tethering in a GTP hydrolysis-dependent manner as reported in studies using bulk assays, only a small fraction of the tethered liposomes proceeded to fusion. Strikingly, the rest of the tethered liposomes failed to fuse or dissociate. This stable tethering, however, did not require continued GTP hydrolysis because GTP omission and magnesium chelation did not disrupt tethering. Interestingly, an increased Sey1p density on the membrane markedly accelerated tethering but barely affected the fusion rate of the tethered liposomes, indicating that Sey1p requires additional factors to support efficient fusion in vivo. Finally, the assay also revealed that Sey1p-mediated liposome fusion occurs through hemifusion, suggesting the mechanistic conservation between biological membrane fusion events despite the existence of diverse fusogens.
Author(s)
Kim, Kyung TaeMoon, YeojinJang, YunsuLee, Kang TaekLee, ChangwookJun, YoungsooLee, Sang Hwa
Issued Date
2017-08
Type
Article
DOI
10.1038/s41598-017-09162-9
URI
https://scholar.gist.ac.kr/handle/local/13657
Publisher
Nature Publishing Group
Citation
Scientific Reports, v.7
ISSN
2045-2322
Appears in Collections:
Department of Chemistry > 1. Journal Articles
Department of Life Sciences > 1. Journal Articles
Research Institutes > 1. Journal Articles
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