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Published on: January 11, 2017
Distinct Splice Variants of Dynamin-related Protein 1 Differentially Utilize Mitochondrial Fission Factor as an
Patrick J Macdonald1, Christopher A Francy2, Natalia Stepanyants1
1From the Department of Physiology and Biophysics.
Abstract:
Multiple isoforms of the mitochondrial fission GTPase dynamin-related protein 1 (Drp1) arise from the alternative splicing of its single gene-encoded pre-mRNA transcript. Among these, the longer Drp1 isoforms, expressed selectively in neurons, bear unique polypeptide sequences within their GTPase and variable domains, known as the A-insert and the B-insert, respectively. Their functions remain unresolved. A comparison of the various biochemical and biophysical properties of the neuronally expressed isoforms with that of the ubiquitously expressed, and shortest, Drp1 isoform (Drp1-short) has revealed the effect of these inserts on Drp1 function. Utilizing various biochemical, biophysical, and cellular approaches, we find that the A- and B-inserts distinctly alter the oligomerization propensity of Drp1 in solution as well as the preferred curvature of helical Drp1 self-assembly on membranes. Consequently, these sequences also suppress Drp1 cooperative GTPase activity. Mitochondrial fission factor (Mff), a tail-anchored membrane protein of the mitochondrial outer membrane that recruits Drp1 to sites of ensuing fission, differentially stimulates the disparate Drp1 isoforms and alleviates the autoinhibitory effect imposed by these sequences on Drp1 function. Moreover, the differential stimulatory effects of Mff on Drp1 isoforms are dependent on the mitochondrial lipid, cardiolipin (CL). Although Mff stimulation of the intrinsically cooperative Drp1-short isoform is relatively modest, CL-independent, and even counter-productive at high CL concentrations, Mff stimulation of the much less cooperative longest Drp1 isoform (Drp1-long) is robust and occurs synergistically with increasing CL content. Thus, membrane-anchored Mff differentially regulates various Drp1 isoforms by functioning as an allosteric effector of cooperative GTPase activity.
Insights
Unique inserts in neuronal dynamin-related protein 1 (Drp1) isoforms alter mitochondrial fission. Mitochondrial fission factor (Mff) differentially regulates these Drp1 variants, modulated by cardiolipin, impacting GTPase activity.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Dynamin-related protein 1 (Drp1) controls mitochondrial fission through various isoforms generated by alternative splicing.
- Neuronally expressed Drp1 isoforms contain unique A- and B-inserts, whose functional significance is largely unknown.
Purpose of the Study:
- To investigate the functional impact of A- and B-inserts on Drp1 isoform properties.
- To elucidate the differential regulation of Drp1 isoforms by mitochondrial fission factor (Mff) and cardiolipin (CL).
Main Methods:
- Biochemical and biophysical analyses of Drp1 isoforms.
- Cellular assays to assess Drp1 function and localization.
- Investigating the interaction between Drp1, Mff, and cardiolipin.
Main Results:
- A- and B-inserts in Drp1 isoforms modulate oligomerization, membrane binding curvature, and suppress GTPase activity.
- Mitochondrial fission factor (Mff) differentially stimulates Drp1 isoforms, alleviating autoinhibition.
- Mff's stimulatory effect on Drp1 isoforms is critically dependent on cardiolipin (CL) levels, with synergistic effects observed for the longest isoform.
Conclusions:
- Alternative splicing generates Drp1 isoforms with distinct biochemical properties, influencing mitochondrial dynamics.
- Mff acts as an allosteric effector, differentially regulating Drp1 isoform activity through a CL-dependent mechanism.
- These findings reveal a sophisticated regulatory network controlling mitochondrial fission in neurons.
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