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Mitochondrial Fusion Intermediates Revealed in Vitro
Shelly Meeusen,1J. Michael McCaffery,2Jodi Nunnari1*
The events that occur during the fusion of double-membranedmitochondria are unknown. As an essential step toward determiningthe mechanism of mitochondrial fusion, we have captured thisevent in vitro. Mitochondrial outer and inner membrane fusionevents were separable and mechanistically distinct, but bothrequired guanosine 5'-triphosphate hydrolysis. Homotypic transinteractions of the ancient outer transmembrane guanosine triphosphatase,Fzo1, were required to promote the fusion of mitochondrial outermembranes, whereas electrical potential was also required forfusion of inner membranes. Our conclusions provide fundamentalinsights into the molecular events driving mitochondrial fusionand advance our understanding of the evolution of mitochondrialfusion in eukaryotic cells.
1 Section of Molecular and Cellular Biology, Center of Genetics and Development, University of California, Davis, CA 95616, USA. 2 Department of Biology and Integrated Imaging Center, Johns Hopkins University, Baltimore, MD 21218, USA.
* To whom correspondence should be addressed. E-mail: jmnunnari{at}ucdavis.edu
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