15.07.2013 Views

Ce document est le fruit d'un long travail approuvé par le jury de ...

Ce document est le fruit d'un long travail approuvé par le jury de ...

Ce document est le fruit d'un long travail approuvé par le jury de ...

SHOW MORE
SHOW LESS

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

124 Bibliographie<br />

110. Agre, P. et Kozono, D. Aquaporin water channels : mo<strong>le</strong>cular mechanisms for human<br />

diseases. FEBS Lett. 555, 72–78 (2003).<br />

111. Wang, Y., Schulten, K. et Tajkhorshid, E. What makes an aquaporin a glycerol<br />

channel ? A com<strong>par</strong>ative study of AqpZ and GlpF. Structure 13, 1107–1118 (2005).<br />

112. Chen, H., Wu, Y. et Voth, G. A. Origins of Proton Transport Behavior from Se-<br />

<strong>le</strong>ctivity Domain Mutations of the Aquaporin-1 Channel. Biophys. J. 90, 73–75<br />

(2006).<br />

113. Hénin, J., Tajkhorshid, E., Schulten, K. et Chipot, C. Diffusion of Glycerol through<br />

Escherichia coli Aquaglyceroporin GlpF. Biophys. J. 94, 832–839 (2008).<br />

114. Nico, B. et Ribatti, D. Aquaporins in tumor growth and angiogenesis. Cancer Lett.<br />

294, 135–138 (2010).<br />

115. Chen, L. Free-energy landscape of glycerol permeation through aquaglyceroporin<br />

GlpF <strong>de</strong>termined from steered mo<strong>le</strong>cular dynamics simulations. Biophys. Chem.<br />

151, 178–180 (2010).<br />

116. Oliva, R., Calamita, G., Thornton, J. M. et Pel<strong>le</strong>grini-Calace, M. E<strong>le</strong>ctrostatics of<br />

aquaporin and aquaglyceroporin channels correlates with their transport se<strong>le</strong>ctivity.<br />

Proc. Natl. Acad. Sci. USA 107, 4135–4140 (2010).<br />

117. Burykin, A. et Warshel, A. On the origin of the e<strong>le</strong>ctrostatic barrier for proton<br />

transport in aquaporin. FEBS Lett. 570, 41–46 (2004).<br />

118. Jensen, M. Ø., Tajkhorshid, E. et Schulten, K. E<strong>le</strong>ctrostatic Tuning of Permeation<br />

and Se<strong>le</strong>ctivity in Aquaporin Water Channels. Biophys. J. 85, 2884–2899 (2003).<br />

119. Ilan, B., Tajkhorshid, E., Schulten, K. et Voth, G. A. The mechanism of proton<br />

exclusion in aquaporin channels. Proteins : Struct., Funct., Bioinform. 55, 223–228<br />

(2004).<br />

120. Gresh, N., Stevens, W. J. et Krauss, M. Mono- and poly-ligated comp<strong>le</strong>xes of Zn2+ :<br />

An ab initio analysis of the metal-ligand interaction energy. J. Comput. Chem. 16,<br />

843–855 (1995).<br />

121. Gresh, N. et Garmer, D. R. Com<strong>par</strong>ative binding energetics of Mg2+, Ca2+, Zn2+,<br />

and Cd2+ to biologically re<strong>le</strong>vant ligands : Combined ab initio SCF supermo<strong>le</strong>cu<strong>le</strong><br />

and mo<strong>le</strong>cular mechanics inv<strong>est</strong>igation. J. Comput. Chem. 17, 1481–1495 (1996).

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!