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Prof Sonia Antoranz Contera

Professor of Biological Physics

Sub department

  • Condensed Matter Physics
Sonia.AntoranzContera@physics.ox.ac.uk
Telephone: 01865 (2)72269
Clarendon Laboratory, room 208
  • About
  • Publications
Conversation on physics bioinspired materials and the future of architecture
link to video of conversation with architect Amanda Levete on biophysics and the future of architecture

1P101 Dynamic imaging of disassembling and recrystallization processes of bR 2D crystals by high-speed AFM(Membrane proteins,Poster Presentions)

Seibutsu Butsuri Biophysical Society of Japan 47:supplement (2007) s48

Authors:

Hayato Yamashita, Kislon Voitchovsky, Takayuki Uchihashi, Sonia Antoranz Contera, Daisuke Yamamoto, JF Ryan, Toshio Ando
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Electrical conductance and breakdown in individual CNx multiwalled nanotubes

Applied Physics Letters 89 (2006) 143110 3pp

Authors:

S Antoranz Contera, E. Brown, H. Burch, J. Davies
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Beta-sheet structured oligomers of Alzheimer's beta-amyloid peptide perturb phosphatidylcholine model membranes

FEBS J 273 (2006) 240-240

Authors:

MRR de Planque, SA Contera, V Raussens, DTS Rijkers, JF Ryan, F Separovic, A Watts
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Differential stiffness and lipid mobility in the leaflets of purple membranes.

Biophys J 90:6 (2006) 2075-2085

Authors:

Kislon Voïtchovsky, Sonia Antoranz Contera, Miya Kamihira, Anthony Watts, JF Ryan

Abstract:

Purple membranes (PM) are two-dimensional crystals formed by bacteriorhodopsin and a variety of lipids. The lipid composition and density in the cytoplasmic (CP) leaflet differ from those of the extracellular (EC) leaflet. A new way of differentiating the two sides of such asymmetric membranes using the phase signal in alternate contact atomic force microscopy is presented. This method does not require molecular resolution and is applied to study the stiffness and intertrimer lipid mobility in both leaflets of the PM independently over a broad range of pH and salt concentrations. PM stiffens with increasing salt concentration according to two different regimes. At low salt concentration, the membrane Young's normal modulus grows quickly but differentially for the EC and CP leaflets. At higher salt concentration, both leaflets behave similarly and their stiffness converges toward the native environment value. Changes in pH do not affect PM stiffness; however, the crystal assembly is less pronounced at pH > or = 10. Lipid mobility is high in the CP leaflet, especially at low salt concentration, but negligible in the EC leaflet regardless of pH or salt concentration. An independent lipid mobility study by solid-state NMR confirms and quantifies the atomic force microscopy qualitative observations.
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Biosensing with CNx multi-wall carbon nanotubes

Japan Society of Applied Physics (2006)

Authors:

Hilary J Burch, Sonia Antoranz Contera, Nashville C Toledo, Maurits RR de Planque, Nicole Grobert, K Voitchovsky, JF Ryan
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