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free-radical polymerization of acrylic acid. Macromolecules 36:8260–8267.
Cracowski, J.-M., Montembault, V., Améduri, B. (2010) Free-radical copolymerization of 2,2,2-trifluoroethyl methacrylate and 2,2,2-trichloroethyl α-fluoroacrylate: Synthesis, kinetics of copolymerization, and characterization.
J. Polym. Sci. 48:2154–2161.
Cuevas Arenas, R., Danielczak, B., Martel, A., Porcar, L., Breyton, C., Ebel, C., Keller, S. (2017) Fast collisional lipid
transfer among polymer-bounded nanodiscs. Sci. Rep. 7:45875.
Dahmane, T., Giusti, F., Catoire, L.J., Popot, J.-L. (2011) Sulfonated amphipols: Synthesis, properties and applications.
Biopolymers 95:811–823.
Daniel, R.M., Finney, J.L., Réat, V., Dunn, R., Ferrand, M., Smith, J.C. (1999) Enzyme dynamics and activity: Timescale dependence of dynamical transitions in glutamate dehydrogenase solution. Biophys. J. 77:2184–2190.
Davis, K.A., Matyjaszewski, K. (2000) Atom transfer radical polymerization of tert-butyl acrylate and preparation of
block copolymers. Macromolecules 33:4039–4047.
De La Fuente, J.L., Madruga, E.L. (2000) Homopolymerization of methyl methacrylate and styrene: Determination of the
chain-transfer constant from the Mayo equation and the number distribution for n-dodecanethiol. J. Polym. Sci.
38:170–178.
Della Pia, E.A., Holm, J., Lloret, N., Le Bon, C., Popot, J.-L., Zoonens, M., Nygård, J., Martinez, K.L. (2014a) A step
closer to membrane protein multiplexed nano-arrays using biotin-doped polypyrrole. ACS Nano 8:1844–1853.
Della Pia, E.A., Westh Hansen, R., Zoonens, M., Martinez, K.L. (2014b) Functionalized amphipols: A versatile toolbox
suitable for applications of membrane proteins in synthetic biology. J. Membr. Biol. 247:815–826.
Di Cola, E., Plucktaveesak, N., Waigh, T.A., Colby, R.H., Tan, J.S., Pyckhout-Hintzen, W., Heenan, R.K. (2004)
Structure and dynamics in aqueous solutions of amphiphilic sodium maleate-containing alternating copolymers.
Macromolecules 37:8457–8465.
Diab, C., Tribet, C., Gohon, Y., Popot, J.-L., Winnik, F.M. (2007a) Complexation of integral membrane proteins by
phosphorylcholine-based amphipols. Biochim. Biophys. Acta 1768:2737–2747.
Diab, C., Winnik, F.M., Tribet, C. (2007b) Enthalpy of interaction and binding isotherms of non-ionic surfactants onto
micellar amphiphilic polymers (amphipols). Langmuir 23:3025–3035.
Dominguez Pardo, J.J., Dörr, J.M., Iyer, A., Cox, R.C., Scheidelaar, S., Koorengevel, M.C., Subramaniam, V., Killian,
J.A. (2017) Solubilization of lipids and lipid phases by the styrene-maleic acid copolymer. Eur. Biophys. J.
46:91–101.
Dörr, J.M., Scheidelaar, S., Koorengevel, M.C., Dominguez, J.J., Schäfer, M., van Walree, C.A., Killian, J.A. (2016) The
styrene-maleic acid copolymer: a versatile tool in membrane research. Eur. Biophys. J. 45:3–21.
Dürr, U.H.N., Soong, R., Ramamoorthy, A. (2013) When detergent meets bilayer: Birth and coming of age of lipid
bicelles. Prog. Nucl. Magn. Reson. Spectrosc. 69:1–22.
Duval-Terrié, C., Cosette, P., Molle, G., Muller, G., Dé, E. (2003) Amphiphilic biopolymers (amphibiopols) as new
surfactants for membrane protein solubilization. Protein Sci. 12:681–689.
Enikolopyan, N.S., Smirnov, B.R., Ponomarev, G.V., Belgovskii, I.M. (1981) Catalyzed chain transfer to monomer in
free radical polymerization. J. Polym. Sci. 19:879–889.
Etzkorn, M., Zoonens, M., Catoire, L.J., Popot, J.-L., Hiller, S. (2014) How amphipols embed membrane proteins:
Global solvent accessibility and interaction with a flexible protein terminus. J. Membr. Biol. 247:965–970.
Fainerman, V.B., Miller, R., Joos, P. (1994) The measurement of dynamic surface-tension by the maximum bubble
pressure method. Colloid Polym. Sci. 272:731–739.
Farina, M. (1987) Chemistry and kinetics of the chain transfer reaction. Makromol. Chem. Macromol. Symp.
10-11:255–272.
Feldermann, A., Coote, M.L., Stenzel, M.H., Davis, T.P., Barner-Kowollik, C. (2004) Consistent experimental and
theoretical evidence for long-lived intermediate radicals in living free radical polymerization. J. Am. Chem. Soc.
126:15915–15923.
Fernandez, A., Le Bon, C., Baumlin, N., Giusti, F., Crémel, G., Popot, J.-L., Bagnard, D. (2014) In vivo characterization
of the biodistribution profile of amphipols. J. Membr. Biol. 247:1043–1051.
Ferrandez, Y., Dezi, M., Bosco, M., Urvoas, A., Valério, M., Le Bon, C., Giusti, F., Broutin, I., Durand, G., Polidori, A.,
Popot, J.-L., Picard, M., Minard, P. (2014) Amphipol-mediated screening of molecular orthoses specific for
membrane protein targets. J. Membr. Biol. 247:925–940.
Fineman, M., Ross, S.D. (1950) Linear method for determining monomer reactivity ratios in copolymerization. J. Polym.
Sci. 5:259–262.
Flory, P.J. (1953) Principles of polymer chemistry. Cornell Univ. Press, Ithaca, NY, 688 p.
Flötenmeyer, M., Weiss, H., Tribet, C., Popot, J.-L., Leonard, K. (2007) The use of amphipathic polymers for cryoelectron microscopy of NADH:ubiquinone oxidoreductase (Complex I). J. Microsc. 227:229–235.
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229
Coat. 21:227–254.
Couvreur, L., Lefay, C., Belleney, J., Charleux, B., Guerret, O., Magnet, S. (2003) First nitroxide-mediated controlled
free-radical polymerization of acrylic acid. Macromolecules 36:8260–8267.
Cracowski, J.-M., Montembault, V., Améduri, B. (2010) Free-radical copolymerization of 2,2,2-trifluoroethyl methacrylate and 2,2,2-trichloroethyl α-fluoroacrylate: Synthesis, kinetics of copolymerization, and characterization.
J. Polym. Sci. 48:2154–2161.
Cuevas Arenas, R., Danielczak, B., Martel, A., Porcar, L., Breyton, C., Ebel, C., Keller, S. (2017) Fast collisional lipid
transfer among polymer-bounded nanodiscs. Sci. Rep. 7:45875.
Dahmane, T., Giusti, F., Catoire, L.J., Popot, J.-L. (2011) Sulfonated amphipols: Synthesis, properties and applications.
Biopolymers 95:811–823.
Daniel, R.M., Finney, J.L., Réat, V., Dunn, R., Ferrand, M., Smith, J.C. (1999) Enzyme dynamics and activity: Timescale dependence of dynamical transitions in glutamate dehydrogenase solution. Biophys. J. 77:2184–2190.
Davis, K.A., Matyjaszewski, K. (2000) Atom transfer radical polymerization of tert-butyl acrylate and preparation of
block copolymers. Macromolecules 33:4039–4047.
De La Fuente, J.L., Madruga, E.L. (2000) Homopolymerization of methyl methacrylate and styrene: Determination of the
chain-transfer constant from the Mayo equation and the number distribution for n-dodecanethiol. J. Polym. Sci.
38:170–178.
Della Pia, E.A., Holm, J., Lloret, N., Le Bon, C., Popot, J.-L., Zoonens, M., Nygård, J., Martinez, K.L. (2014a) A step
closer to membrane protein multiplexed nano-arrays using biotin-doped polypyrrole. ACS Nano 8:1844–1853.
Della Pia, E.A., Westh Hansen, R., Zoonens, M., Martinez, K.L. (2014b) Functionalized amphipols: A versatile toolbox
suitable for applications of membrane proteins in synthetic biology. J. Membr. Biol. 247:815–826.
Di Cola, E., Plucktaveesak, N., Waigh, T.A., Colby, R.H., Tan, J.S., Pyckhout-Hintzen, W., Heenan, R.K. (2004)
Structure and dynamics in aqueous solutions of amphiphilic sodium maleate-containing alternating copolymers.
Macromolecules 37:8457–8465.
Diab, C., Tribet, C., Gohon, Y., Popot, J.-L., Winnik, F.M. (2007a) Complexation of integral membrane proteins by
phosphorylcholine-based amphipols. Biochim. Biophys. Acta 1768:2737–2747.
Diab, C., Winnik, F.M., Tribet, C. (2007b) Enthalpy of interaction and binding isotherms of non-ionic surfactants onto
micellar amphiphilic polymers (amphipols). Langmuir 23:3025–3035.
Dominguez Pardo, J.J., Dörr, J.M., Iyer, A., Cox, R.C., Scheidelaar, S., Koorengevel, M.C., Subramaniam, V., Killian,
J.A. (2017) Solubilization of lipids and lipid phases by the styrene-maleic acid copolymer. Eur. Biophys. J.
46:91–101.
Dörr, J.M., Scheidelaar, S., Koorengevel, M.C., Dominguez, J.J., Schäfer, M., van Walree, C.A., Killian, J.A. (2016) The
styrene-maleic acid copolymer: a versatile tool in membrane research. Eur. Biophys. J. 45:3–21.
Dürr, U.H.N., Soong, R., Ramamoorthy, A. (2013) When detergent meets bilayer: Birth and coming of age of lipid
bicelles. Prog. Nucl. Magn. Reson. Spectrosc. 69:1–22.
Duval-Terrié, C., Cosette, P., Molle, G., Muller, G., Dé, E. (2003) Amphiphilic biopolymers (amphibiopols) as new
surfactants for membrane protein solubilization. Protein Sci. 12:681–689.
Enikolopyan, N.S., Smirnov, B.R., Ponomarev, G.V., Belgovskii, I.M. (1981) Catalyzed chain transfer to monomer in
free radical polymerization. J. Polym. Sci. 19:879–889.
Etzkorn, M., Zoonens, M., Catoire, L.J., Popot, J.-L., Hiller, S. (2014) How amphipols embed membrane proteins:
Global solvent accessibility and interaction with a flexible protein terminus. J. Membr. Biol. 247:965–970.
Fainerman, V.B., Miller, R., Joos, P. (1994) The measurement of dynamic surface-tension by the maximum bubble
pressure method. Colloid Polym. Sci. 272:731–739.
Farina, M. (1987) Chemistry and kinetics of the chain transfer reaction. Makromol. Chem. Macromol. Symp.
10-11:255–272.
Feldermann, A., Coote, M.L., Stenzel, M.H., Davis, T.P., Barner-Kowollik, C. (2004) Consistent experimental and
theoretical evidence for long-lived intermediate radicals in living free radical polymerization. J. Am. Chem. Soc.
126:15915–15923.
Fernandez, A., Le Bon, C., Baumlin, N., Giusti, F., Crémel, G., Popot, J.-L., Bagnard, D. (2014) In vivo characterization
of the biodistribution profile of amphipols. J. Membr. Biol. 247:1043–1051.
Ferrandez, Y., Dezi, M., Bosco, M., Urvoas, A., Valério, M., Le Bon, C., Giusti, F., Broutin, I., Durand, G., Polidori, A.,
Popot, J.-L., Picard, M., Minard, P. (2014) Amphipol-mediated screening of molecular orthoses specific for
membrane protein targets. J. Membr. Biol. 247:925–940.
Fineman, M., Ross, S.D. (1950) Linear method for determining monomer reactivity ratios in copolymerization. J. Polym.
Sci. 5:259–262.
Flory, P.J. (1953) Principles of polymer chemistry. Cornell Univ. Press, Ithaca, NY, 688 p.
Flötenmeyer, M., Weiss, H., Tribet, C., Popot, J.-L., Leonard, K. (2007) The use of amphipathic polymers for cryoelectron microscopy of NADH:ubiquinone oxidoreductase (Complex I). J. Microsc. 227:229–235.
References
229
