Related Experiment Video
Updated: Jul 5, 2025

A Model Membrane Platform for Reconstituting Mitochondrial Membrane Dynamics
Published on: September 2, 2020
Comparing multifunctional viral and eukaryotic proteins for generating scission necks in membranes
Abstract:
Deterministic formation of membrane scission necks by protein machinery with multiplexed functions is critical in biology. A microbial example is the M2 viroporin, a proton pump from the influenza A virus which is multiplexed with membrane remodeling activity to induce budding and scission in the host membrane during viral maturation. In comparison, the dynamin family constitutes a class of eukaryotic proteins implicated in mitochondrial fission, as well as various budding and endocytosis pathways. In the case of Dnm1, the mitochondrial fission protein in yeast, the membrane remodeling activity is multiplexed with mechanoenzyme activity to create fission necks. It is not clear why these functions are combined in these scission processes, which occur in drastically different compositions and solution conditions. In general, direct experimental access to changing neck sizes induced by individual proteins or peptide fragments is challenging due to the nanoscale dimensions and influence of thermal fluctuations. Here, we use a mechanical model to estimate the size of scission necks by leveraging Small-Angle X-ray Scattering (SAXS) structural data of protein-lipid systems under different conditions. The influence of interfacial tension, lipid composition, and membrane budding morphology on the size of the induced scission necks is systematically investigated using our data and molecular dynamic simulations. We find that the M2 budding protein from the influenza A virus has robust pH-dependent membrane activity that induces nanoscopic necks within the range of spontaneous hemi-fission for a broad range of lipid compositions. In contrast, the sizes of scission necks generated by mitochondrial fission proteins strongly depend on lipid composition, which suggests a role for mechanical constriction.
Insights
Protein machinery forms critical membrane scission necks. Influenza M2 viroporin shows pH-dependent activity, while mitochondrial fission proteins
Area of Science:
- Membrane biology
- Biophysics
- Virology
Background:
- Protein machinery plays a critical role in membrane scission, a process essential for viral maturation and cellular functions like mitochondrial fission.
- The M2 viroporin from influenza A virus and eukaryotic dynamins (e.g., yeast Dnm1) exemplify proteins with multiplexed functions in membrane remodeling and scission.
- Understanding how these proteins induce scission necks, especially across diverse conditions, is challenging due to nanoscale dimensions and thermal fluctuations.
Approach:
- A mechanical model was developed to estimate scission neck sizes.
- Small-Angle X-ray Scattering (SAXS) data of protein-lipid systems under varying conditions were utilized.
- Molecular dynamic simulations complemented experimental data to investigate influencing factors.
Key Points:
- The M2 protein from influenza A virus exhibits robust, pH-dependent membrane activity, inducing nanoscopic necks suitable for spontaneous hemi-fission across various lipid compositions.
- Scission neck sizes induced by mitochondrial fission proteins are highly sensitive to lipid composition, suggesting a significant role for mechanical constriction.
- Interfacial tension, lipid composition, and membrane budding morphology were systematically analyzed for their influence on scission neck size.
Conclusions:
- The study provides insights into the distinct mechanisms by which viral and eukaryotic proteins induce membrane scission.
- Findings highlight the tunable nature of M2 protein activity and the lipid-dependent mechanical role of mitochondrial fission proteins.
- This research offers a framework for understanding protein-mediated membrane scission dynamics.
Related Concept Videos
SNAREs and Membrane Fusion
SNAREs exist in pairs that symmetrically interact and catalyze the fusion of the lipid bilayers in vesicle and target organelle. v-SNARE in the vesicle membrane are single polypeptide chains that bind to a complementary t-SNARE, composed of 2...
Protein Complexes with Interchangeable Parts
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order...
Mechanisms of Membrane Domain Formation
Another mechanism for membrane domain formation involves membrane proteins interacting with...
Pinching-off of Coated Vesicles
Intralumenal Vesicles and Multivesicular Bodies
Membrane Asymmetry Regulating Transporters
Flippase
Eukaryotic flippases are type-IV P-type ATPases or P4-ATPases belonging to P-type ATPase family proteins that are membrane-bound pumps involved in the ATP-mediated transport of ions and molecules across the membrane. Flippases flip specific phospholipids from the outer to the inner leaflet of a membrane. All P4-ATPases have one...

