Mashaghi et al. Hydration strongly affects the molecular and electronic structure of membrane phospholipids. 136, 114709 (2012)Archived copy. [2012-05-17]. (原始内容存档于2016-05-15).
Alireza Mashaghi et al., Hydration strongly affects the molecular and electronic structure of membrane phospholipids. J. Chem. Phys. 136, 114709 (2012) Archived copy. [2012-05-17]. (原始内容存档于2016-05-15).
Mashaghi et al. Hydration strongly affects the molecular and electronic structure of membrane phospholipids. 136, 114709 (2012)Archived copy. [2012-05-17]. (原始内容存档于2016-05-15).
Alireza Mashaghi et al., Hydration strongly affects the molecular and electronic structure of membrane phospholipids. J. Chem. Phys. 136, 114709 (2012) Archived copy. [2012-05-17]. (原始内容存档于2016-05-15).
Georgiev, Danko D .; James F . Glazebrook. Subneuronal processing of information by solitary waves and stochastic processes. Lyshevski, Sergey Edward (编). Nano and Molecular Electronics Handbook. Nano and Microengineering Series. CRC Press. 2007: 17–1–17–41 [2018-09-01]. ISBN 978-0-8493-8528-5. (原始内容存档于2016-01-16).
Kornberg RD, McConnell HM. Inside-outside transitions of phospholipids in vesicle membranes. Biochemistry. March 1971, 10 (7): 1111–20. PMID 4324203. doi:10.1021/bi00783a003.
Litman BJ. Determination of molecular asymmetry in the phosphatidylethanolamine surface distribution in mixed phospholipid vesicles. Biochemistry. July 1974, 13 (14): 2844–8. PMID 4407872. doi:10.1021/bi00711a010.
Crane JM, Kiessling V, Tamm LK. Measuring lipid asymmetry in planar supported bilayers by fluorescence interference contrast microscopy. Langmuir. February 2005, 21 (4): 1377–88. PMID 15697284. doi:10.1021/la047654w.
Fadok VA, Bratton DL, Frasch SC, Warner ML, Henson PM. The role of phosphatidylserine in recognition of apoptotic cells by phagocytes. Cell Death Differ. July 1998, 5 (7): 551–62. PMID 10200509. doi:10.1038/sj.cdd.4400404.
Tokumasu F, Jin AJ, Dvorak JA. Lipid membrane phase behavior elucidated in real time by controlled environment atomic force microscopy. J. Electron Micros. 2002, 51 (1): 1–9. PMID 12003236. doi:10.1093/jmicro/51.1.1.
Characterization of lipid bilayers and protein assemblies supported on rough surfaces by atomic force microscopy. Langmuir. 2003, 19 (5): 1632–40. doi:10.1021/la026427w.
Gundelfinger ED, Kessels MM, Qualmann B. Temporal and spatial coordination of exocytosis and endocytosis. Nat. Rev. Mol. Cell Biol. February 2003, 4 (2): 127–39. PMID 12563290. doi:10.1038/nrm1016.
McIntosh TJ, Simon SA. Roles of Bilayer Material Properties in Function and Distribution of Membrane Proteins. Annu. Rev. Biophys. Biomol. Struct. 2006, 35 (1): 177–98. PMID 16689633. doi:10.1146/annurev.biophys.35.040405.102022.
Suchyna TM, Tape SE, Koeppe RE, Andersen OS, Sachs F, Gottlieb PA. Bilayer-dependent inhibition of mechanosensitive channels by neuroactive peptide enantiomers. Nature. July 2004, 430 (6996): 235–40. Bibcode:2004Natur.430..235S. PMID 15241420. doi:10.1038/nature02743.
Rutkowski CA, Williams LM, Haines TH, Cummins HZ. The elasticity of synthetic phospholipid vesicles obtained by photon correlation spectroscopy. Biochemistry. June 1991, 30 (23): 5688–96. PMID 2043611. doi:10.1021/bi00237a008.
Weaver JC, Chizmadzhev YA. Theory of electroporation: A review. Biochemistry and Bioenergetics. 1996, 41 (2): 135–60. doi:10.1016/S0302-4598(96)05062-3.
Boris EH, Winterhalter M, Frederik PM, Vallner JJ, Lasic DD. Stealth liposomes: from theory to product. Advanced Drug Delivery Reviews. 1997, 24 (2–3): 165–77. doi:10.1016/S0169-409X(96)00456-5.
Lopes DE, Menezes DE, Kirchmeier MJ, Gagne JF. Cellular trafficking and cytotoxicity of anti-CD19-targeted liposomal doxorubicin in B lymphoma cells. Journal of Liposome Research. 1999, 9 (2): 199–228. doi:10.3109/08982109909024786.
Dooren LJ, Wiedemann LR. On bimolecular layers of lipids on the chromocytes of the blood. Journal of European Journal of Pediatrics. 1986, 145 (5): 329. doi:10.1007/BF00439232.
Sjöstrand FS, Andersson-Cedergren E, Dewey MM. The ultrastructure of the intercalated discs of frog, mouse and guinea pig cardiac muscle. J. Ultrastruct. Res. April 1958, 1 (3): 271–87. PMID 13550367. doi:10.1016/S0022-5320(58)80008-8.
Mueller P, Rudin DO, Tien HT, Wescott WC. Reconstitution of cell membrane structure in vitro and its transformation into an excitable system. Nature. June 1962, 194 (4832): 979–80. Bibcode:1962Natur.194..979M. PMID 14476933. doi:10.1038/194979a0.
Bangham, A. D.; Horne, R. W. Negative Staining of Phospholipids and Their Structural Modification by Surface-Active Agents As Observed in the Electron Microscope. Journal of Molecular Biology. 1964, 8 (5): 660–668. PMID 14187392. doi:10.1016/S0022-2836(64)80115-7.
Mueller P, Rudin DO, Tien HT, Wescott WC. Reconstitution of cell membrane structure in vitro and its transformation into an excitable system. Nature. June 1962, 194 (4832): 979–80. Bibcode:1962Natur.194..979M. PMID 14476933. doi:10.1038/194979a0.
Kornberg RD, McConnell HM. Inside-outside transitions of phospholipids in vesicle membranes. Biochemistry. March 1971, 10 (7): 1111–20. PMID 4324203. doi:10.1021/bi00783a003.
Litman BJ. Determination of molecular asymmetry in the phosphatidylethanolamine surface distribution in mixed phospholipid vesicles. Biochemistry. July 1974, 13 (14): 2844–8. PMID 4407872. doi:10.1021/bi00711a010.
Crane JM, Kiessling V, Tamm LK. Measuring lipid asymmetry in planar supported bilayers by fluorescence interference contrast microscopy. Langmuir. February 2005, 21 (4): 1377–88. PMID 15697284. doi:10.1021/la047654w.
Fadok VA, Bratton DL, Frasch SC, Warner ML, Henson PM. The role of phosphatidylserine in recognition of apoptotic cells by phagocytes. Cell Death Differ. July 1998, 5 (7): 551–62. PMID 10200509. doi:10.1038/sj.cdd.4400404.
Tokumasu F, Jin AJ, Dvorak JA. Lipid membrane phase behavior elucidated in real time by controlled environment atomic force microscopy. J. Electron Micros. 2002, 51 (1): 1–9. PMID 12003236. doi:10.1093/jmicro/51.1.1.
Gundelfinger ED, Kessels MM, Qualmann B. Temporal and spatial coordination of exocytosis and endocytosis. Nat. Rev. Mol. Cell Biol. February 2003, 4 (2): 127–39. PMID 12563290. doi:10.1038/nrm1016.
McIntosh TJ, Simon SA. Roles of Bilayer Material Properties in Function and Distribution of Membrane Proteins. Annu. Rev. Biophys. Biomol. Struct. 2006, 35 (1): 177–98. PMID 16689633. doi:10.1146/annurev.biophys.35.040405.102022.
Suchyna TM, Tape SE, Koeppe RE, Andersen OS, Sachs F, Gottlieb PA. Bilayer-dependent inhibition of mechanosensitive channels by neuroactive peptide enantiomers. Nature. July 2004, 430 (6996): 235–40. Bibcode:2004Natur.430..235S. PMID 15241420. doi:10.1038/nature02743.
Rutkowski CA, Williams LM, Haines TH, Cummins HZ. The elasticity of synthetic phospholipid vesicles obtained by photon correlation spectroscopy. Biochemistry. June 1991, 30 (23): 5688–96. PMID 2043611. doi:10.1021/bi00237a008.
Leventis R, Gagné J, Fuller N, Rand RP, Silvius JR. Divalent cation induced fusion and lipid lateral segregation in phosphatidylcholine-phosphatidic acid vesicles. Biochemistry. November 1986, 25 (22): 6978–87. PMID 3801406. doi:10.1021/bi00370a600.
Markin VS, Kozlov MM, Borovjagin VL. On the theory of membrane fusion. The stalk mechanism. Gen. Physiol. Biophys. October 1984, 3 (5): 361–77. PMID 6510702.
Sjöstrand FS, Andersson-Cedergren E, Dewey MM. The ultrastructure of the intercalated discs of frog, mouse and guinea pig cardiac muscle. J. Ultrastruct. Res. April 1958, 1 (3): 271–87. PMID 13550367. doi:10.1016/S0022-5320(58)80008-8.
Robertson JD. The ultrastructure of cell membranes and their derivatives. Biochem. Soc. Symp. 1959, 16: 3–43. PMID 13651159.
Mueller P, Rudin DO, Tien HT, Wescott WC. Reconstitution of cell membrane structure in vitro and its transformation into an excitable system. Nature. June 1962, 194 (4832): 979–80. Bibcode:1962Natur.194..979M. PMID 14476933. doi:10.1038/194979a0.
Bangham, A. D.; Horne, R. W. Negative Staining of Phospholipids and Their Structural Modification by Surface-Active Agents As Observed in the Electron Microscope. Journal of Molecular Biology. 1964, 8 (5): 660–668. PMID 14187392. doi:10.1016/S0022-2836(64)80115-7.
Georgiev, Danko D .; James F . Glazebrook. Subneuronal processing of information by solitary waves and stochastic processes. Lyshevski, Sergey Edward (编). Nano and Molecular Electronics Handbook. Nano and Microengineering Series. CRC Press. 2007: 17–1–17–41 [2018-09-01]. ISBN 978-0-8493-8528-5. (原始内容存档于2016-01-16).