Mitochondria change their shape dynamically, mainly
through fission and fusion. Dynamin-related GTPases have been shown
to mediate remodeling of mitochondrial membranes during these
processes. Mitochondrial fission in mammals is mediated by the
dynamin-like protein DLP1/Drp1 that is recruited to the outer
mitochondrial surface through the membrane-anchored protein hFis1.
Another GTPase, Mitofusin (Mfn), is anchored at the outer
mitochondrial membrane and mediates fusion of the outer membrane.
Mammalian cells have two Mfn isoforms, Mfn1 and Mfn2, that share a
conserved molecular structure. Either Mfn1 or Mfn2 can functionally
replace each other in Mfn-null cells, suggesting their conserved
role as fusion proteins as well. This thesis research centers on
the mitochondrial fusion protein Mfn2. Specifically, it focuses on
studying the effect of the Mfn2-induced mitochondrial shape change
on mitochondrial function and the molecular mechanisms of
mitochondrial fusion mediated by the Mfn2 protein.
We found that
overexpression of Mfn2 drastically changes mitochondrial
morphology, forming mitochondrial clusters. High-resolution
microscopic examination indicated that the mitochondrial cluster
consisted of small fragmented mitochondria. Inhibiting
mitochondrial fission prevented the cluster formation, supporting
the notion that mitochondrial clusters are formed by
fission-mediated mitochondrial fragmentation and subsequent
aggregation. Mitochondrial clusters displayed a decrease in inner
membrane potential and proton pumping activity, suggesting
functional compromise of small fragmented mitochondria by Mfn2
overexpression; however, mitochondrial clusters still retained
mitochondrial DNA. We found that cells containing clustered
mitochondria lost cytochrome c from mitochondria and underwent
caspase-mediated apoptosis. These results demonstrate that
mitochondrial deformation impairs mitochondrial function, leading
to apoptotic cell death and suggest the presence of an intricate
form-function relationship of mitochondria. Because intra- and
inter-molecular interactions play an important role in the membrane
remodeling action of dynamin family proteins, we analyzed domain
interactions of the Mfn2 molecule using genetic and biochemical
approaches. We found that two hydrophobic heptad-repeat (HR)
domains, HR1 and HR2, interact with each other, in addition to the
already reported HR2 and HR2 interaction. Interestingly, we
discovered that the region of Mfn2-HR1 interacting with HR2 also
interacts with the C-terminal coiled-coil domain of the fission
protein DLP1 (DLP1-CC). We identified mutations in the Mfn2-HR1
region that selectively disrupt the HR1/HR2 interaction and the
Mfn2/DLP1 interaction. Morphological analyses indicated that the
Mfn2/DLP1 interaction participates in mitochondrial fusion whereas
the association of HR1 and HR2 of Mfn2 is inhibitory in the fusion
process. These data suggest that DLP1 functions as a regulatory
factor interacting differentially with Mfn2 and hFis1, which
provides a novel mechanism for efficient…