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Am J Physiol Cell Physiol 285: C623-C632, 2003. First published May 7, 2003; doi:10.1152/ajpcell.00349.2002
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MEMBRANE TRANSPORTERS, ION CHANNELS, AND PUMPS

Glutamate 59 is critical for transport function of the amino acid cotransporter KAAT1

V. Franca Sacchi,1 Michela Castagna,1 Stefania A. Mari,1 Carla Perego,1 Elena Bossi,2 and Antonio Peres2

1Institute of General Physiology and Biological Chemistry, University of Milano, 20134 Milano; and 2Department of Structural and Functional Biology, University of Insubria, 21100 Varese, Italy

Submitted 29 July 2002 ; accepted in final form 10 May 2003

KAAT1 is a neutral amino acid transporter activated by K+ or by Na+ (9). The protein shows significant homology with members of the Na+/Cl-dependent neurotransmitter transporter super family. E59G KAAT1, expressed in Xenopus oocytes, exhibited a reduced leucine uptake [20–30% of wild-type (WT)], and kinetic analysis indicated that the loss of activity was due to reduction of Vmax and apparent affinity for substrates. Electrophysiological analysis revealed that E59G KAAT1 has presteady-state and uncoupled currents larger than WT but no leucine-induced currents. Site-directed mutagenesis analysis showed the requirement of a negative charge in position 59 of KAAT1. The analysis of permeant and impermeant methanethiosulfonate reagent effects confirmed the intracellular localization of glutamate 59. Because the 2-aminoethyl methanethiosulfonate hydrobromid inhibition was not prevented by the presence of Na+ or leucine, we concluded that E59 is not directly involved in the binding of substrates. N-ethylmaleimide inhibition was qualitatively and quantitatively different in the two transporters, WT and E59G KAAT1, having the same cysteine residues. This indicates an altered accessibility of native cysteine residues due to a modified spatial organization of E59G KAAT1. The arginine modifier phenylglyoxal effect supports this hypothesis: not only cysteine but also arginine residues become more accessible to the modifying reagents in the mutant E59G. In conclusion, the results presented indicate that glutamate 59 plays a critical role in the three-dimensional organization of KAAT1.

amino acid transport; structure/function; amino acid modifiers; Manduca sexta



Address for reprint requests and other correspondence: V. Franca Sacchi, Institute of General Physiology and Biological Chemistry, Via Trentacoste 2, 20134 Milano, Italy (E-mail: Franca.Sacchi{at}unimi.it).




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M. Castagna, A. Soragna, S. A. Mari, M. Santacroce, S. Bette, P. G. Mandela, G. Rudnick, A. Peres, and V. F. Sacchi
Interaction between lysine 102 and aspartate 338 in the insect amino acid cotransporter KAAT1
Am J Physiol Cell Physiol, October 1, 2007; 293(4): C1286 - C1295.
[Abstract] [Full Text] [PDF]




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