K. Ataka, F. Giess, W. Knoll, R. Naumann, S. Haber-pohlmeiter et al., Oriented attachment and membrane reconstitution of His-tagged cytochrome c oxidase to a gold electrode: in situ monitoring by surface enhanced infrared adsorption spectroscopy, J Am Chem Soc, vol.126, pp.16199-16206, 2004.

V. Atanasov, N. Knorr, R. S. Duran, S. Ingebrandt, A. Ovenhausser et al., Membrane on a chip: a functional tethered lipid bilayer membrane on silicon oxide surfaces, Biophys J, vol.89, pp.1780-1788, 2005.

V. Atanasov, P. Atanasova, I. Vockenroth, N. Knorr, and I. Köper, A molecular toolkit for highly insulating tethered bilayer lipid membranes in various subtrates, Bioconjug Chem, vol.17, pp.631-637, 2006.

C. D. Bain and G. M. Whitesides, A study by contact angle of the acidbase behavior of monolayers containing w-mercaptocarboxylic acids adsorbed on gold: an example of reactive spreading, vol.5, pp.1370-1378, 1989.

T. Bayerl and M. Bloom, Physical properties of single phospholipid bilayers adsorbed to micro glass beads. A new vesicular model system studied by 2H-nuclear magnetic resonance, Biophys J, vol.58, pp.357-362, 1990.

M. Beckmann, P. Nollert, and H. A. Kolb, Manipulation and molecular resolution of a phosphatidylcholine-supported planar bilayer by atomic force microscopy, J Membr Biol, vol.161, pp.227-233, 1998.

A. A. Brian and H. M. Mcconnell, Allogeneic stimulation of cytotoxic T cells by supported planar membranes, Proc Natl Acad Sci, vol.81, pp.6159-6163, 1984.

N. Bunjes, E. K. Schmidt, A. Jonczyk, F. Rippmann, D. Beyer et al., Thiopeptide-supported lipid layers on solid substrates, Langmuir, vol.13, pp.6188-6194, 1997.

L. Cezanne, A. Lopez, F. Loste, G. Parnaud, O. Saurel et al., Organization and dynamics of the proteolipid complexes formed by annexin V and lipids in planar supported lipid bilayers, Biochemistry, vol.38, pp.2779-2786, 1999.

Y. Cheng, N. Boden, R. J. Bushby, S. Clarkson, S. D. Evans et al., Attenuated total reXection Fourier transform infrared spectroscopic characterization of Xuid lipid bilayers tethered to solid supports, Langmuir, vol.14, pp.839-844, 1998.

M. Colombini, E. Blachly-dyson, and M. Forte, VDAC, a channel in the outer mitochondrial membrane, Ion Channels, vol.4, pp.169-202, 1996.

B. A. Cornell, V. L. Braach-maksvytis, L. G. King, P. D. Osman, B. Raguse et al., A biosensor that uses ion-channel switches, Nature, vol.387, pp.580-583, 1997.

A. Deniaud, C. Rossi, A. Berquand, J. Homand, S. Campagna et al., The voltage-dependent anion channels transports calcium ions throught biomimetic membranes, Langmuir, vol.23, issue.7, pp.3898-3905, 2007.

M. A. Deverall, E. Gindl, E. Sinner, H. Besir, J. Ruehe et al., Membrane lateral mobility obstructed by polymer-tethered lipids studied at the single molecule level, Biophys J, vol.88, pp.1875-1886, 2005.

C. Duschl, M. Liley, G. Corradin, and H. Vogel, Biologically addressable monolayer structures formed by templates of sulfur-bearing molecules, Biophys J, vol.67, pp.1229-1266, 1994.

G. Elender, M. Khuner, and E. Sackmann, Functionalisation of Si/ SiO2 and glass surfaces with ultrathin dextran Wlms and deposition of lipid bilayers, Biosens Bioelectron, vol.11, pp.565-577, 1996.

C. Elie-caille, O. Fliniaux, J. Pantigny, J. Maziere, and C. Bourdillon, Self-assembly of solid-supported membranes using a triggered fusion of phospholipid-enriched proteoliposomes prepared from the inner mitochondrial membrane, Langmuir, vol.21, pp.4661-4668, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00096251

H. E. Findlay and P. J. Booth, The biological signiWcance of lipid-protein interactions, J Phys Condens Matter, vol.18, pp.1281-1291, 2006.

M. I. Fisher and T. Tjarnhage, Structure and activity of lipid membrane biosensor surfaces studied with atomic force microscopy and a resonant mirror, Biosens Bioelectron, vol.15, pp.463-471, 2000.

M. G. Friedrich, F. Giess, R. Naumann, K. Ataka, J. Heberle et al., Active site structure and redox processes of cytochrome c oxidase immobilised in a novel biomimetic lipid membrane on a electrode, Chem Commun, issue.21, pp.2376-2377, 2004.

F. Giess, M. G. Friedrich, J. Heberle, R. L. Naumann, and W. Knoll, The protein-tethered lipid bilayer: a novel mimic of the biological membrane, Biophys J, vol.87, pp.3213-3220, 2004.

S. A. Glazier, D. J. Vanderah, A. L. Plant, H. Bayley, G. Valincius et al., Reconstitution of pore-forming toxin-hemolysin in phospholipid/18-octadecyl-1-thiahexa(ethylene oxide) and phospholipid/n-octadecanethiol supported bilayer membranes, Langmuir, vol.16, pp.10428-10435, 2000.

J. T. Groves, N. Ulman, and S. G. Boxer, Micropatterning Xuid lipid bilayers on solid supports, Science, vol.275, pp.651-653, 1997.

J. T. Groves, N. Ulman, P. S. Cremer, and S. G. Boxer, Substrate-membrane interactions: mechanisms for imposing patterns on a Xuid bilayer membrane, Langmuir, vol.14, pp.3347-3350, 1998.

S. Heyse, O. P. Ernst, Z. Dienes, K. P. Hofmann, and H. Vogel, Incorporation of rhodopsin in laterally structured supported membranes : observation of transducin activation with spatially and time-resolved surface plasmon resonance, Biochemistry, vol.37, pp.507-522, 1998.

P. Hinterdorfer, G. Baber, and L. K. Tamm, Reconstitution of membrane fusion sites. A total internal reXection Xuorescence microscopy study of inXuenza hemagglutinin-mediated membrane fusion, J Biol Chem, vol.269, pp.20360-20368, 1994.

L. Jeuken, S. D. Connell, M. Nurnabi, J. O'reilly, P. Henderson et al., Direct electrochemical interaction between a modiWed gold electrode and a bacterial membrane extract, Langmuir, vol.21, pp.1481-1488, 2005.

L. Jeuken, S. D. Connell, P. Henderson, R. B. Gennis, S. D. Evans et al., Redox enzymes in tethered membranes, J Am Chem Soc, vol.128, pp.1711-1716, 2006.

S. J. Johnson, T. M. Bayerl, D. C. Mcdermott, G. W. Adam, A. R. Rennie et al., Structure of an adsorbed dimyristoylphosphatidylcholine bilayer measured with specular reXection of neutrons, Biophys J, vol.59, pp.289-294, 1991.

L. S. Jung, J. S. Shumaker-parry, C. T. Campbell, S. S. Yee, and M. H. Gelb, QuantiWcation of tight binding to surface-immobilized phospholipid vesicles using surface plasmon resonance: binding constant of phospholipase A2, J Am Chem Soc, vol.122, pp.4177-4184, 2000.

E. Kalb, S. Frey, and L. K. Tamm, Formation of supported planar bilayers by fusion of vesicles to supported phospholipid monolayers, Biochim Biophys Acta, vol.1103, pp.307-316, 1992.

V. Kiessling and L. K. Tamm, Measuring distances in supported bilayers by Xuorescence interference-contrast microscopy: polymer supports and SNARE proteins, Biophys J, vol.84, pp.408-418, 2003.

J. H. Kleinschmidt and L. K. Tamm, Secondary and tertiary structure formation of the beta-barrel membrane protein OmpA is synchronized and depends on membrane thickness, J Mol Biol, vol.324, pp.319-330, 2002.

W. Knoll, C. W. Frank, C. Heibel, R. Naumann, A. Ovenhausser et al., Functional tethered lipid bilayers, J Biotechnol, vol.74, pp.137-158, 2000.

D. Ladant and A. Ullmann, Bordatella pertussis adenylate cyclase: a toxin with multiple talents, Trends Microbiol, vol.7, pp.172-176, 1999.

H. Lang, C. Duschl, M. Gratzel, and H. Vogel, Self-assembled of thiolipid molecular layers on gold surfaces: optical and electrochemical characterization, Thin Solid Films, vol.210, pp.818-821, 1992.

H. Lang, C. Duschl, and H. Vogel, A new class of thiolipids for the attachment of lipid bilayers on gold surfaces, Langmuir, vol.10, 1994.

C. Ma, M. P. Srinivasan, A. J. Waring, R. I. Lehrer, M. L. Longo et al., Supported lipid bilayers lifted from the substrate by layerby-layer polyion cushions on self-assembled monolayers, Colloids Surf B Biointerfaces, vol.28, pp.319-329, 2003.

J. Majewski, T. L. Kuhl, M. C. Gerstenberg, J. N. Israelachvili, and G. S. Smith, Structure of phospholipid monolayers containing poly(ethylene glycol) lipids at the air-water interface, J Phys Chem B, vol.101, pp.3122-3129, 1997.

H. M. Mcconnell, T. H. Watts, R. M. Weis, and A. A. Brian, Supported planar membranes in studies of cell-cell recognition in the immune system, Biochim Biophys Acta, vol.864, pp.95-106, 1986.

M. Merzlyakov, E. Li, I. Gitsov, and K. Hristova, Surface-supported bilayers with transmembrane proteins: role of the polymer cushion revisited, Langmuir, vol.22, pp.10145-10151, 2006.

A. Michalke, T. Schurholz, H. Galla, and C. Steinem, Membrane activity of an anion channel from Clavibacter michiganense ssp. nebraskense, Langmuir, vol.17, pp.2251-2257, 2001.

J. C. Munro and C. W. Frank, In situ formation and characterization of poly(ethylene glycol)-supported lipid bilayers on gold surfaces, Langmuir, vol.20, pp.10567-10575, 2004.

C. A. Naumann, O. Prucker, T. Lehmann, J. Ruhe, W. Knoll et al., The polymer-supported phospholipid bilayer: tethering as a new approach to substrate-membrane stabilization, Biomacromolecules, vol.3, pp.27-35, 2002.

R. Naumann, A. Jonczyk, R. Kopp, V. Esch, J. Ringsdorf et al., Coupling of proton translocation through ATPase incorporated into supported lipid bilayers to an electrochemical process, Bioelectrochem Bioenerg, vol.42, pp.241-247, 1997.

R. Naumann, E. K. Schmidt, A. Jonczyk, K. Fendler, B. Kadenbach et al., The peptidetethered lipid membrane as a biomimetic system to incorporate cytochrome c oxidase in a functionally active form, Biosens Bioelectron, vol.14, pp.651-662, 1999.

R. Naumann, S. M. Schiller, F. Giess, B. Grohe, K. B. Hartman et al., Tethered lipid bilayers on ultraXat gold surfaces, Langmuir, vol.19, pp.5435-5443, 2003.

R. Naumann, D. Walz, S. M. Schiller, and W. Knoll, Kinetics of valinomycin-mediated K + ion transport through tethered bilayer lipid membranes, J Electroanal Chem, vol.550, pp.241-252, 2003.

P. Nollert, H. Kiefer, and F. Jahnig, Lipid vesicle adsorption versus formation of planar bilayers on solid surfaces, Biophys J, vol.69, pp.1447-1455, 1995.

A. L. Plant, Self-assembled phospholipid/alkanethiol biomimetic bilayers on gold, Langmuir, vol.9, pp.2764-2767, 1993.

A. L. Plant, Supported hybrid bilayer membranes as rugged cell membrane mimics, Langmuir, vol.15, pp.5128-5135, 1999.

K. L. Prime and G. M. Whitesides, Self-assembled organic monolayers: model systems for studying adsorption of proteins at surfaces, Science, vol.252, pp.1164-1167, 1991.

V. Proux-delrouyre, C. Elie, J. Laval, J. Moiroux, and C. Bourdillon, Formation of tethered and streptavidin-supported lipid bilayers on a microporous electrode for the reconstitution of membranes of large surface area, Langmuir, vol.18, pp.3263-3272, 2002.
URL : https://hal.archives-ouvertes.fr/hal-00096290

J. Rädler, H. Strey, and E. Sackmann, Phenomenology and kinetics of lipid bilayer spreading on hydrophilic surfaces, Langmuir, vol.11, pp.4539-4548, 1995.

U. Radler, J. Mack, N. Persike, G. Jung, and R. Tampe, Design of supported membranes tethered via metal-aYnity ligand-receptor pairs, Biophys J, vol.79, pp.3144-3152, 2000.

B. Raguse, V. Braach-maksvytis, B. A. Cornell, L. G. King, P. D. Osman et al., Tethered lipid bilayer membranes: formation and ionic reservoir characterization, Langmuir, vol.14, pp.648-659, 1998.

E. Reimhult, F. Hook, and B. Kasemo, Intact vesicle adsorption and supported biomembrane formation from vesicles in solution: inXuence of surface chemistry, vesicle size, temperature, and osmotic pressure, Langmuir, vol.19, pp.1681-1691, 2003.

I. Reviakine and A. Brisson, Streptavidin 2D crystals on supported phospholipid bilayers: toward constructing anchored phospholipid bilayers, Langmuir, vol.17, pp.8293-8299, 2001.

R. Robelek, E. S. Lemker, B. Wiltschi, V. Kirste, R. Naumann et al., Incorporation of in vitro synthesized GPCR into a tethered artiWcial lipid membrane system, Angew Chem Int Ed Engl, vol.46, pp.605-608, 2007.

C. Rossi, J. Homand, C. Bauche, H. Hamdi, D. Ladant et al., DiVerential mechanisms for calcium-dependent protein/ membrane association as evidenced from SPR-binding studies on supported biomimetic membranes, Biochemistry, vol.42, pp.15273-15283, 2003.

C. Rossi, E. Briand, P. Parot, M. Odorico, and J. Chopineau, Surface response methodology for the study of supported membrane formation, J Phys Chem B, 2007.
URL : https://hal.archives-ouvertes.fr/hal-00172758

E. Sackmann, Supported membranes: scientiWc and practical applications, Science, vol.271, pp.43-48, 1996.

E. Sackmann and M. Tanaka, Supported membranes on soft polymer cushions: fabrication, characterization and applications, Trends Biotechnol, vol.18, pp.58-64, 2000.

J. Salafsky, J. T. Groves, and S. G. Boxer, Architecture and function of membrane proteins in planar supported bilayers: a study with photosynthetic reaction centers, Biochemistry, vol.35, pp.14773-14781, 1996.

S. M. Schiller, R. Naumann, K. Lovejoy, H. Kunz, and W. Knoll, Archeas analogue thiolipids for tethered bilayer lipid membrane on ultrasmooth gold surfaces, Angew Chem Int Ed Engl, vol.42, pp.208-211, 2003.

E. K. Schmidt, T. Liebermann, M. Kreiter, A. Jonczyk, R. Naumann et al., Incorporation of the acetylcholine receptor dimer from torpedo california in a peptide supported lipid membrane investigated by surface plasmon and Xuorescence spectroscopy, Biosens Bioelectron, vol.13, pp.585-591, 1998.

M. Seitz, J. Y. Wong, C. K. Park, N. A. Alcantar, and J. N. Israelachvili, Formation of tethered supported bilayers via membrane-inserting reactive lipids, Thin solid Wlms, pp.767-771, 1998.

M. Seitz, E. Ter-ovanesyan, M. Hausch, C. K. Park, J. A. Zasadzinski et al., Formation of tethered supported bilayers by vesicle fusion onto lipopolymer monolayers promoted by osmotic stress, Langmuir, vol.16, pp.6067-6070, 2000.

J. Spinke, J. Yang, H. Wolf, M. Liley, H. Ringsdorf et al., Polymer-supported bilayer on a solid substrate, Biophys J, vol.63, pp.1667-1671, 1992.

L. Tamm and H. Mcconnell, Supported phospholipid bilayers, Biophys J, vol.47, pp.105-113, 1985.

L. K. Tamm, J. Crane, and V. Kiessling, Membrane fusion: a structural perspective on the interplay of lipids and proteins, Curr Opin Struct Biol, vol.13, pp.453-466, 2003.

L. K. Tamm, X. Han, Y. Li, and A. L. Lai, Structure and function of membrane fusion peptides, Biopolymers, vol.66, pp.249-260, 2002.

M. Tanaka and E. Sackmann, Polymer-supported membranes as models of the cell surface, Nature, vol.437, pp.656-663, 2005.

S. Terrettaz, W. P. Ulrich, R. Guerrini, A. Verdini, and H. Vogel, Immunosensing by a synthetic lignad-gated ion channel, Angew Chem Int Ed Engl, vol.40, pp.1740-1743, 2001.

S. Terrettaz, M. Mayer, and H. Vogel, Highly electrically insulating tethered lipid bilayers for probing the function of ion channel proteins, Langmuir, vol.19, pp.5567-5569, 2003.

M. L. Wagner and L. K. Tamm, Tethered polymer-supported planar lipid bilayers for reconstitution of integral membrane proteins: silane-polyethyleneglycol-lipid as a cushion and covalent linker, Biophys J, vol.79, pp.1400-1414, 2000.

M. L. Wagner and L. K. Tamm, Reconstituted syntaxin1a/SNAP25 interacts with negatively charged lipids as measured by lateral diVusion in planar supported bilayers, Biophys J, vol.81, pp.266-275, 2001.

J. Y. Wong, J. Majewski, M. Seitz, C. K. Park, J. N. Israelachvili et al., Polymer-cushioned bilayers. I. A structural study of various preparation methods using neutron reXectometry, Biophys J, vol.77, pp.1445-1457, 1999.

C. Yoshina-ishii and S. G. Boxer, Arrays of mobile tethered vesicles on supported lipid bilayers, J Am Chem Soc, vol.125, pp.3696-3697, 2003.

L. Zhang, C. A. Booth, and P. Stroeve, Phosphatidylserine/cholesterol bilayers supported on a polycation/alkylthiol layer pair, J Colloid Interface Sci, vol.228, pp.82-89, 2000.