Steric interference from intrinsically disordered regions controls dynamin-related protein 1 self-assembly during
Bin Lu1, Bridget Kennedy1, Ryan W Clinton2,3,4
1Department of Physiology & Biophysics, Case Western Reserve University School of Medicine, Cleveland, OH, 44106, USA.
Abstract:
The self-assembling, mechanoenzymatic dynamin superfamily GTPase, dynamin-related protein 1 (Drp1), catalyzes mitochondrial and peroxisomal fission. Distinct intrinsically disordered regions (IDRs) in Drp1 substitute for the canonical pleckstrin homology (PH) domain and proline-rich domain (PRD) of prototypical dynamin, which cooperatively regulate endocytic vesicle scission. Whether the Drp1 IDRs function analogously to the corresponding dynamin domains however remains unknown. We show that an IDR unique to the Drp1 GTPase (G) domain, the 'extended 80-loop', albeit dissimilar in location, structure, and mechanism, functions akin to the dynamin PRD by enabling stable Drp1 mitochondrial recruitment and by suppressing Drp1 cooperative GTPase activity in the absence of specific partner-protein interactions. Correspondingly, we find that another IDR, the Drp1 variable domain (VD), in conjunction with the conserved stalk L1N loop, functions akin to the dynamin PH domain; first, in an 'auto-inhibitory' capacity that restricts Drp1 activity through a long-range steric inhibition of helical inter-rung G-domain dimerization, and second, as a 'fulcrum' for Drp1 self-assembly in the proper helical register. We show that the Drp1 VD is necessary and sufficient for specific Drp1-phospholipid interactions. We further demonstrate that the membrane-dependent VD conformational rearrangement essential for the alleviation of Drp1 auto-inhibition is contingent upon the basal GTP hydrolysis-dependent generation of Drp1 dimers from oligomers in solution. IDRs thus conformationally couple the enzymatic and membrane activities of Drp1 toward membrane fission.
Insights
Dynamin-related protein 1 (Drp1) intrinsically disordered regions (IDRs) mimic canonical domains, regulating mitochondrial fission. These IDRs couple Drp1
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Dynamin-related protein 1 (Drp1) is a GTPase essential for mitochondrial and peroxisomal fission.
- Drp1 contains intrinsically disordered regions (IDRs) that replace canonical domains found in other dynamins.
- The functional analogy between Drp1 IDRs and canonical dynamin domains remains unclear.
Purpose of the Study:
- To investigate the functional roles of Drp1's intrinsically disordered regions (IDRs) in relation to canonical dynamin domains.
- To elucidate how Drp1 IDRs regulate its self-assembly, GTPase activity, and membrane interactions.
Main Methods:
- Biochemical assays to analyze Drp1 GTPase activity and self-assembly.
- Structural and functional studies of Drp1's extended 80-loop and variable domain (VD).
- Investigation of Drp1 interactions with phospholipids and partner proteins.
Main Results:
- The Drp1 extended 80-loop mimics the proline-rich domain (PRD) by stabilizing mitochondrial recruitment and suppressing GTPase activity.
- The Drp1 variable domain (VD), with the L1N loop, acts like the PH domain, mediating phospholipid interactions and auto-inhibition.
- Membrane binding induces VD conformational changes, relieving auto-inhibition and enabling fission.
Conclusions:
- Drp1's IDRs are crucial for its mechanoenzymatic activity and membrane fission function.
- The extended 80-loop and VD play analogous roles to canonical PRD and PH domains, respectively.
- IDRs conformationally link Drp1's enzymatic functions with its membrane-binding and fission capabilities.
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