Structure and function of ATA3, a new subtype of amino acid transport system A, primarily expressed in the liver and skeletal muscle

被引:119
作者
Sugawara, M
Nakanishi, T
Fei, YJ
Martindale, RG
Ganapathy, ME
Leibach, FH
Ganapathy, V [1 ]
机构
[1] Med Coll Georgia, Dept Biochem & Mol Biol, Augusta, GA 30912 USA
[2] Med Coll Georgia, Dept Surg, Augusta, GA 30912 USA
[3] Med Coll Georgia, Dept Med, Augusta, GA 30912 USA
来源
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES | 2000年 / 1509卷 / 1-2期
关键词
system A; amino acid transporter A3; electrophysiology; liver; skeletal muscle; rat;
D O I
10.1016/S0005-2736(00)00349-7
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
To date, two different transporters that are capable of transporting alpha-(methylamino)isobutyric acid, the specific substrate for amino acid transport system A, have been cloned. These two transporters are known as ATA1 and ATA2. We have cloned a third transporter that is able to transport the system A-specific substrate. This new transporter, cloned from rat skeletal muscle and designated rATA3, consists of 547 amino acids and has a high degree of homology to rat ATA1 (47% identity) and rat ATA2 (57% identity). rATA3 mRNA is present only in the liver and skeletal muscle. When expressed in Xenopus laevis oocytes, rATA3 mediates the transport of alpha-[C-14](methylamino)isobutyric acid and [H-3]alanine. With the two-microelectrode voltage clamp technique, we have shown that exposure of rATA3-expressing oocytes to neutral, short-chain aliphatic amino acids induces inward currents. The amino acid-induced current is Na+-dependent and pH-dependent. Analysis of the currents with alanine as the substrate has shown that the K-0.5 for alanine (i.e., concentration of the amino acid yielding half-maximal current) is 4.2 +/- 0.1 mM and that the Na+:alanine stoichiometry is 1:1. (C) 2000 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:7 / 13
页数:7
相关论文
共 21 条
[1]   ON THE STRATEGY OF KINETIC DISCRIMINATION OF AMINO-ACID TRANSPORT-SYSTEMS [J].
CHRISTENSEN, HN .
JOURNAL OF MEMBRANE BIOLOGY, 1985, 84 (02) :97-103
[2]   ROLE OF AMINO-ACID-TRANSPORT AND COUNTERTRANSPORT IN NUTRITION AND METABOLISM [J].
CHRISTENSEN, HN .
PHYSIOLOGICAL REVIEWS, 1990, 70 (01) :43-77
[3]  
CHRISTENSEN HN, 1989, METHOD ENZYMOL, V173, P576
[4]   Primary structure, genomic organization, and functional and electrogenic characteristics of human system N 1, a Na+- and H+-coupled glutamine transporter [J].
Fei, YJ ;
Sugawara, M ;
Nakanishi, T ;
Huang, W ;
Wang, HP ;
Prasad, PD ;
Leibach, FH ;
Ganapathy, V .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2000, 275 (31) :23707-23717
[5]   THE AMINO-ACID-TRANSPORT SYSTEM Y(+)L INDUCED IN XENOPUS-LAEVIS OOCYTES BY HUMAN CHORIOCARCINOMA CELL (JAR) MESSENGER-RNA IS FUNCTIONALLY RELATED TO THE HEAVY-CHAIN OF THE 4F2 CELL-SURFACE ANTIGEN [J].
FEI, YJ ;
PRASAD, PD ;
LEIBACH, FH ;
GANAPATHY, V .
BIOCHEMISTRY, 1995, 34 (27) :8744-8751
[6]   Primary structure, functional characteristics and tissue expression pattern of human ATA2, a subtype of aminoacid transport system A [J].
Hatanaka, T ;
Huang, W ;
Wang, HP ;
Sugawara, M ;
Prasad, PD ;
Leibach, FH ;
Ganapathy, V .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 2000, 1467 (01) :1-6
[7]  
HAUSSINGER D, 1992, MAMMALIAN AMINO ACID TRANSPORT, P113
[8]  
KILBERG MS, 1986, FED PROC, V45, P2438
[9]   RELAXATION KINETICS OF THE NA+/GLUCOSE COTRANSPORTER [J].
LOO, DDF ;
HAZAMA, A ;
SUPPLISSON, S ;
TURK, E ;
WRIGHT, EM .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (12) :5767-5771
[10]   Mechanisms of the human intestinal H+-coupled oligopeptide transporter hPEPT1 [J].
Mackenzie, B ;
Loo, DDF ;
Fei, YJ ;
Liu, W ;
Ganapathy, V ;
Leibach, FH ;
Wright, EM .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (10) :5430-5437