ref [7] · 2609.10168 · notice #10976 · dispute
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Natl. Acad. Sci. U.S.A. 118 (2021) e2017435118.doi:10.1073/pnas.2017435118. [7] R. D. Usery, T. A. Enoki, S. P. Wickramasinghe, V. P. Nguyen, D. G. Ackerman, D. V. Greathouse, R. E. Koeppe, II, F. N. Barrera, G. W. Feigenson, Membrane bending moduli of coexisting liquid phases containing transmembrane peptide, Biophys. J. 114 (2018) 2152-2164. doi:10.1016/j.bpj.2018.03.026. [8] M. Rinaldin, P. Fonda, L. Giomi, D. J. Kraft, Geometric pinning and antimixing in scaffolded lipid vesicles, Nat. Commun. 11 (2020) 4314.doi:10.1038/s41467-020-17432-w. [9] W. Helfrich, Elastic properties of lipid bilayers: Theory and possible experiments, Z. Natur- forsch. C 28 (1973) 693-703.doi:10.1515/znc-1973-11-1209. [10] Q. Du, C. Liu, X.
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Natl. Acad. Sci. U.S.A. 118 (2021) e2017435118.doi:10.1073/pnas.2017435118. [7] R. D. Usery, T. A. Enoki, S. P. Wickramasinghe, V. P. Nguyen, D. G. Ackerman, D. V. Greathouse, R. E. Koeppe, II, F. N. Barrera, G. W. Feigenson, Membrane bending moduli of coexisting liquid phases containing transmembrane peptide, Biophys. J. 114 (2018) 2152-2164. doi:10.1016/j.bpj.2018.03.026. [8] M. Rinaldin, P. Fonda, L. Giomi, D. J. Kraft, Geometric pinning and antimixing in scaffolded lipid vesicles, Nat. Commun. 11 (2020) 4314.doi:10.1038/s41467-020-17432-w. [9] W. Helfrich, Elastic properties of lipid bilayers: Theory and possible experiments, Z. Natur- forsch. C 28 (1973) 693-703.doi:10.1515/znc-1973-11-1209. [10] Q. Du, C. Liu, X