Skin barrier formation: the membrane folding model.
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[1] L. Norlén,et al. Skin barrier structure and function: the single gel phase model. , 2001, The Journal of investigative dermatology.
[2] S. Funari,et al. A continuous topological change during phase transitions in amphiphile/water systems. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[3] M. Larsson,et al. Biomathematics : mathematics of biostructures and biodynamics , 1999 .
[4] S. Ollmar,et al. Inter- and intra-individual differences in human stratum corneum lipid content related to physical parameters of skin barrier function in vivo. , 1999, The Journal of investigative dermatology.
[5] D. Siegel. The modified stalk mechanism of lamellar/inverted phase transitions and its implications for membrane fusion. , 1999, Biophysical journal.
[6] L. Norlén,et al. A new HPLC-based method for the quantitative analysis of inner stratum corneum lipids with special reference to the free fatty acid fraction , 1998, Archives of Dermatological Research.
[7] U. Rassner,et al. The secretory granular cell: the outermost granular cell as a specialized secretory cell. , 1998, The journal of investigative dermatology. Symposium proceedings.
[8] P. Wertz,et al. Lamellar granule biogenesis: a role for ceramide glucosyltransferase, lysosomal enzyme transport, and the Golgi. , 1998, The journal of investigative dermatology. Symposium proceedings.
[9] M. Fartasch. Epidermal barrier in disorders of the skin , 1997, Microscopy research and technique.
[10] K. Larsson. On periodic curvature and standing wave motions in cell membranes. , 1997, Chemistry and physics of lipids.
[11] Stephen T. Hyde,et al. The Language of Shape: The Role of Curvature in Condensed Matter: Physics, Chemistry and Biology , 1996 .
[12] T. Redelmeier,et al. Skin Barrier: Principles of Percutaneous Absorption , 1996 .
[13] J. Fournier,et al. Nontopological saddle-splay and curvature instabilities from anisotropic membrane inclusions. , 1996, Physical review letters.
[14] Tomas Landh. Cubic Cell Membrane Architectures. Taking another look at membrane bound cell spaces , 1996 .
[15] T Landh,et al. From entangled membranes to eclectic morphologies: cubic membranes as subcellular space organizers , 1995, FEBS letters.
[16] R. Lipowsky. The morphology of lipid membranes. , 1995, Current opinion in structural biology.
[17] J. Burgoyne,et al. An Extensive Mesh Phase Liquid Crystal in Aqueous Mixtures of a Long Chain Nonionic Surfactant , 1995 .
[18] Håkan Wennerström,et al. The Colloidal Domain: Where Physics, Chemistry, Biology and Technology Meet , 1994 .
[19] Kåre Larsson,et al. Lipids : molecular organization, physical functions and technical applications , 1994 .
[20] D. Siegel,et al. Energetics of intermediates in membrane fusion: comparison of stalk and inverted micellar intermediate mechanisms. , 1993, Biophysical journal.
[21] M. Lindberg,et al. Water and ion distribution profiles in human skin. , 1993, Acta dermato-venereologica.
[22] Seifert,et al. Curvature-induced lateral phase segregation in two-component vesicles. , 1993, Physical review letters.
[23] J. Engblom,et al. A study of polar lipid drug systems undergoing a thermoreversible lamellar-to-cubic phase transition , 1992 .
[24] U. Henriksson,et al. Intermediate liquid crystalline phases in the binary system C16TACl-H2O: an NMR and low-angle x-ray diffraction study , 1992 .
[25] J. Bouwstra,et al. Structural investigations of human stratum corneum by small-angle X-ray scattering. , 1991, The Journal of investigative dermatology.
[26] S. Hyde,et al. Bending energy of surfactant films , 1991 .
[27] J. Hazel,et al. The role of alterations in membrane lipid composition in enabling physiological adaptation of organisms to their physical environment. , 1990, Progress in lipid research.
[28] W. Helfrich. Invited Lecture. Hats and saddles in lipid membranes , 1989 .
[29] K. Larsson. Cubic lipid-water phases: structures and biomembrane aspects , 1989 .
[30] L. J. Lis,et al. Physiological levels of diacylglycerols in phospholipid membranes induce membrane fusion and stabilize inverted phases. , 1989, Biochemistry.
[31] I. Brody. A light and electron microscopy study of normal human stratum corneum with particular reference to the intercellular space. , 1989, Upsala journal of medical sciences.
[32] F. N. Ghadially. Ultrastructural pathology of the cell and matrix , 1988 .
[33] R. Warner,et al. Electron probe analysis of human skin: determination of the water concentration profile. , 1988, The Journal of investigative dermatology.
[34] P. Wertz,et al. Composition and morphology of epidermal cyst lipids. , 1987, The Journal of investigative dermatology.
[35] C. Squier,et al. Variations in lipids in different layers of porcine epidermis. , 1986, The Journal of investigative dermatology.
[36] L Landmann,et al. Epidermal permeability barrier: transformation of lamellar granule-disks into intercellular sheets by a membrane-fusion process, a freeze-fracture study. , 1986, The Journal of investigative dermatology.
[37] R. G. Anderson,et al. Biogenesis of the crystalloid endoplasmic reticulum in UT-1 cells: evidence that newly formed endoplasmic reticulum emerges from the nuclear envelope , 1986, Journal of Cell Biology.
[38] R. Freinkel,et al. Lipid composition and acid hydrolase content of lamellar granules of fetal rat epidermis. , 1985, The Journal of investigative dermatology.
[39] R. Isseroff,et al. Lamellar body-enriched fractions from neonatal mice: preparative techniques and partial characterization. , 1985, The Journal of investigative dermatology.
[40] Kozlov Mm,et al. On the Theory of Membrane Fusion. The Stalk Mechanism , 1984 .
[41] P. Wertz,et al. Sphingolipids of the stratum corneum and lamellar granules of fetal rat epidermis. , 1984, The Journal of investigative dermatology.
[42] D. Marsh,et al. Calorimetric studies of the gel-fluid (L beta-L alpha) and lamellar-inverted hexagonal (L alpha-HII) phase transitions in dialkyl- and diacylphosphatidylethanolamines. , 1983, Biochemistry.
[43] H. Wennerström,et al. Hydration forces and phase equilibria in the dipalmitoyl phosphatidylcholine—water system , 1982 .
[44] R. Freinkel,et al. A method for partial purification of lamellar granules from fetal rat epidermis. , 1981, The Journal of investigative dermatology.
[45] G. Odland,et al. The lamellar granules of epidermis. , 1981, Current problems in dermatology.
[46] N. Krog,et al. Structural relationships between lamellar, cubic and hexagonal phases in monoglyceride-water systems. possibility of cubic structures in biological systems , 1980 .
[47] R. White,et al. Glycosphingolipids and ceramides in human and pig epidermis. , 1978, The Journal of investigative dermatology.
[48] R. Lavker,et al. Membrane coating granules: the fate of the discharged lamellae. , 1976, Journal of ultrastructure research.
[49] G. M. Gray,et al. isolation and , 2022 .
[50] G. M. Gray,et al. Lipid compositions of cells isolated from pig, human, and rat epidermis. , 1975, Journal of lipid research.
[51] W. Helfrich. Elastic Properties of Lipid Bilayers: Theory and Possible Experiments , 1973, Zeitschrift fur Naturforschung. Teil C: Biochemie, Biophysik, Biologie, Virologie.
[52] H. Ishikawa. FORMATION OF ELABORATE NETWORKS OF T-SYSTEM TUBULES IN CULTURED SKELETAL MUSCLE WITH SPECIAL REFERENCE TO THE T-SYSTEM FORMATION , 1968, The Journal of cell biology.
[53] F. Reiss-Husson,et al. Structure of the Cubic Phases of Lipid–Water Systems , 1966, Nature.
[54] A. Matoltsy. Membrane-coating granules of the epidermis. , 1966, Journal of ultrastructure research.
[55] I. Brody. Intercellular Space in Normal Human Stratum Corneum , 1966, Nature.