First published online June 4, 2004; 10.1104/pp.103.033415
Plant Physiology 135:1059-1068 (2004)
© 2004 American Society of Plant Biologists
GENETICS, GENOMICS, AND MOLECULAR EVOLUTION
Homology Modeling of Representative Subfamilies of Arabidopsis Major Intrinsic Proteins. Classification Based on the Aromatic/Arginine Selectivity Filter1,[w]
Ian S. Wallace and
Daniel M. Roberts*
Department of Biochemistry, Cellular, and Molecular Biology and Center of Excellence in Structural Biology, The University of Tennessee, Knoxville, Tennessee 37996
Major intrinsic proteins (MIPs) are a family of membrane channels that facilitate the bidirectional transport of water and small uncharged solutes such as glycerol. The 35 full-length members of the MIP family in Arabidopsis are segregated into four structurally homologous subfamilies: plasma membrane intrinsic proteins (PIPs), tonoplast intrinsic proteins (TIPs), nodulin 26-like intrinsic membrane proteins (NIPs), and small basic intrinsic proteins (SIPs). Computational methods were used to construct structural models of the putative pore regions of various plant MIPs based on homology modeling with the atomic resolution crystal structures of mammalian aquaporin 1 and the bacterial glycerol permease GlpF. Based on comparisons of the narrow selectivity filter regions (the aromatic/Arg [ar/R] filter), the members of the four phylogenetic subfamilies of Arabidopsis MIPs can be classified into eight groups. PIPs possess a uniform ar/R signature characteristic of high water transport aquaporins, whereas TIPs are highly diverse with three separate conserved ar/R regions. NIPs possess two separate conserved ar/R regions, one that is similar to the archetype, soybean (Glycine max) nodulin 26, and another that is characteristic of Arabidopsis NIP6;1. The SIP subfamily possesses two ar/R subgroups, characteristic of either SIP1 or SIP2. Both SIP ar/R residues are divergent from all other MIPs in plants and other kingdoms. Overall, these findings suggest that higher plant MIPs have a common fold but show distinct differences in proposed pore apertures, potential to form hydrogen bonds with transported molecules, and amphiphilicity that likely results in divergent transport selectivities.
1 This work was supported by the National Science Foundation (grant no. MCB0237219), the National Institutes of Health (grant no. RR01847001), and the American Society of Plant Biologists (Summer Undergraduate Fellowship to I.S.W.).
[w] The online version of this article contains Web-only data.
Article, publication date, and citation information can be found at www.plantphysiol.org/cgi/doi/10.1104/pp.103.033415.
* Corresponding author; e-mail drobert{at}utk.edu; fax 18659746306.
Received October 3, 2003;
returned for revision November 24, 2003;
accepted December 2, 2003.
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