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Updated: Jun 24, 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
Haleh Alimohamadi1,2,3,4, Elizabeth Wei-Chia Luo1,2,3,4, Shivam Gupta5
1Department of Bioengineering, University of California, Los Angeles, Los Angeles, California 90025, United States.
Abstract:
Deterministic formation of membrane scission necks by protein machinery with multiplexed functions is critical in biology. A microbial example is M2 viroporin, a proton pump from the influenza A virus that 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 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 hemifission 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 and yeast Dnm1 proteins remodel membranes, but neck size regulation differs, impacting viral budding and mitochondrial fission.
Area of Science:
- Biophysics
- Molecular Biology
- Cell Biology
Background:
- Membrane scission is vital for cellular processes like viral maturation and mitochondrial fission.
- Proteins like influenza M2 viroporin and yeast Dnm1 possess multiplexed functions for membrane remodeling and scission.
- Understanding the physical mechanisms governing scission neck size is challenging due to nanoscale dimensions.
Purpose of the Study:
- To investigate the factors influencing scission neck size during membrane remodeling by viral and eukaryotic proteins.
- To compare the membrane activity of influenza M2 viroporin and yeast Dnm1 using a mechanical model.
- To elucidate the roles of interfacial tension, lipid composition, and protein mechanics in determining scission neck dimensions.
Main Methods:
- Utilized a mechanical model combined with small-angle X-ray scattering (SAXS) data.
- Analyzed protein-lipid systems under varying conditions (pH, lipid composition).
- Integrated molecular dynamics simulations to complement experimental data.
Main Results:
- Influenza M2 viroporin exhibited robust, pH-dependent membrane activity, inducing nanoscopic necks across diverse lipid compositions.
- Scission neck sizes generated by yeast Dnm1 were highly sensitive to lipid composition, suggesting mechanical constriction.
- The study provides insights into the distinct mechanisms of membrane scission by viral and mitochondrial proteins.
Conclusions:
- Protein-lipid interactions and mechanical properties critically determine scission neck size.
- Influenza M2 viroporin's activity is less dependent on lipid environment compared to yeast Dnm1.
- The findings highlight how different biological systems achieve membrane scission through tailored protein machinery.
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