Abstract
AbstractFusion proteins can play a versatile and involved role during all stages of the fusion reaction. Their roles go far beyond forcing the opposing membranes into close proximity to drive stalk formation and fusion. Molecular simulations have played a central role in providing a molecular understanding of how fusion proteins actively overcome the free energy barriers of the fusion reaction up to the expansion of the fusion pore. Unexpectedly, molecular simulations have revealed a preference of the biological fusion reaction to proceed through asymmetric pathways resulting in the formation of, e.g., a stalk-hole complex, rim-pore, or vertex pore. Force-field based molecular simulations are now able to directly resolve the minimum free-energy path in protein-mediated fusion as well as quantifying the free energies of formed reaction intermediates. Ongoing developments in Graphics Processing Units (GPUs), free energy calculations, and coarse-grained force-fields will soon gain additional insights into the diverse roles of fusion proteins.
Funder
SFB803
Georg-August-Universität Göttingen
Publisher
Springer Science and Business Media LLC
Subject
General Medicine,Biophysics
Reference79 articles.
1. Allen RJ, Valeriani C, ten Wolde PR (2009) Forward flux sampling for rare event simulations. J. Phys.: Cond. Matt. , 21, 463102
2. Baoukina S, Tieleman DP (2010) Direct simulation of protein-mediated vesicle fusion: lung surfactant protein B. Biophys. J. 99:2134–2142
3. Bassereau P et al (2018) The 2018 biomembrane curvature and remodeling roadmap. J. Phys. D: Applied Physics 51:343001
4. Bhaskara RM, Linker SM, Vögele M, Köfinger J, Hummer G (2017) Carbon nanotubes mediate fusion of lipid vesicles. ACS Nano 11:1273–1280
5. Blokhuis EM, D’Agostino M, Mayer A, Risselada HJ (2020) Fusion Pores Live on the Edge. J. Phys. Chem. Lett. 11:1204–1208
Cited by
22 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献