Bending of a lipid membrane edge by annexin A5 trimers
Mayank Prakash Pandey1, Paulo Cesar Telles de Souza2, Weria Pezeshkian3
1PHYLIFE, Physical Life Science, Department of Physics, Chemistry and Pharmacy, University of Southern Denmark, Odense, Denmark.
Abstract:
Plasma membrane damage occurs in healthy cells and more frequently in cancer cells where high growth rates and metastasis result in frequent membrane damage. The annexin family of proteins plays a key role in membrane repair. Annexins are recruited at the membrane injury site by Ca+2 and repair the damaged membrane in concert with several other proteins. Annexin A4 (ANXA4) and ANXA5 form trimers at the bilayer surface, and previous simulations show that the trimers induce high local negative membrane curvature on a flat bilayer. The membrane-curvature-inducing property of ANXA5 is presumed to be vital to the membrane repair mechanism. A previously proposed descriptive model hypothesizes that ANXA5-mediated curvature force is utilized at the free edge of the membrane at a wound site to pull the wound edges together, resulting in the formation of a "neck"-shaped structure, which, when combined with a constriction force exerted by ANXA6, leads to membrane repair. The molecular details and mechanisms of repair remain unknown, in part because the membrane edge is a transient structure that is difficult to investigate both experimentally and computationally. For the first time, we investigate the impact of ANXA5 near a membrane edge, which is modeled by a bicelle under periodic boundary conditions. ANXA5 trimers induce local curvature on the membrane leading to global bending of the bicelle. The global curvature depends on the density of annexins on the bicelle, and the curvature increases with the ANXA5 concentration until it reaches a plateau. The simulations suggest that not only do annexins induce local membrane curvature, but they can change the overall shape of a free-standing membrane. We also demonstrate that ANXA5 trimers reduce the rate of phosphatidylserine lipid diffusion from the cytoplasmic to the exoplasmic leaflet along the edge of the bicelle. In this way, membrane-bound annexins can potentially delay the apoptotic signal triggered by the presence of phosphatidylserine lipids in the outer leaflet, thus biding time for repair of the membrane hole. Our findings provide new insights into the role of ANXA5 at the edges of the membrane (the injury site) and support the curvature-constriction model of membrane repair.
Insights
Annexin A5 (ANXA5) trimers induce membrane curvature, aiding in cell membrane repair. These proteins also reduce lipid diffusion, potentially delaying apoptosis and allowing more time for healing.
Area of Science:
- Cell Biology
- Biophysics
- Computational Biology
Background:
- Plasma membrane damage is frequent in cancer cells, necessitating effective repair mechanisms.
- The annexin protein family, particularly Annexin A5 (ANXA5), is crucial for membrane repair by responding to calcium ions and facilitating healing.
- Previous models suggest ANXA5 induces membrane curvature, contributing to wound closure.
Purpose of the Study:
- To investigate the impact of ANXA5 on membrane edges, a critical but transient structure in membrane repair.
- To explore how ANXA5 trimers influence membrane shape and dynamics at a wound site.
- To provide molecular insights into the ANXA5 role in the curvature-constriction model of membrane repair.
Main Methods:
- Computational simulations using a bicelle model under periodic boundary conditions to represent a membrane edge.
- Analysis of ANXA5 trimer-induced local and global membrane curvature.
- Quantification of phosphatidylserine lipid diffusion rates at the membrane edge in the presence of ANXA5.
Main Results:
- ANXA5 trimers induce local membrane curvature, leading to global bending of the bicelle.
- The degree of global curvature is dependent on ANXA5 concentration, plateauing at higher densities.
- ANXA5 trimers significantly reduce phosphatidylserine lipid diffusion, potentially delaying apoptosis.
- Simulations reveal ANXA5 can alter the overall shape of free-standing membranes.
Conclusions:
- ANXA5 plays a significant role in membrane repair by inducing both local and global membrane curvature.
- The curvature-inducing property of ANXA5 is vital for pulling wound edges together, supporting the curvature-constriction model.
- By reducing phosphatidylserine diffusion, ANXA5 provides a crucial time window for membrane repair before apoptotic signaling.
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