Altered gene expression in the liver of γ-glutamyl transpeptidase-deficient mice

被引:14
作者
Habib, GM
Shi, ZZ
Ou, CN
Kala, G
Kala, SV
Lieberman, MW
机构
[1] Baylor Coll Med, Dept Pathol, Houston, TX 77030 USA
[2] Baylor Coll Med, Dept Mol & Cellular Biol, Houston, TX 77030 USA
关键词
D O I
10.1053/jhep.2000.9715
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
We used mice deficient in gamma-glutamyl transpeptidase (GGT) to analyze the effects of GGT deficiency and altered thiol levels on gene expression in liver. GGT-deficient mice have markedly reduced levels of glutathione (GSH), cysteine, methionine, and cysteinylglycine in liver. Steady-state RNA levels of the catalytic subunit of gamma-glutamylcysteine synthetase (gamma-GCS), the rate-limiting enzyme in GSH synthesis, are elevated 4-fold in these mice, while those for glutathione synthetase (GSH syn) are elevated 2-fold. RNA levels of cystathionase (cystathionine gamma-lyase), a key enzyme in the synthesis of cysteine from methionine, are elevated similar to 3.5-fold. In contrast, levels of RNA coding for multidrug resistance protein 2 (MRP2), which transports GSH into bile, are half wild-type values. We found no change in RNA levels of enzymes related to oxidative injury (CuZn and Mn superoxide dismutases [SOD], catalase, and glutathione peroxidase). Similarly, RNA levels of glutathione reductase and ribonucleotide reductase were unchanged. Furthermore, in contrast to previous in vitro results, methyl methanesulfonate did not induce stress-activated signal transduction as measured by c-jun phosphorylation in livers of GGT-deficient mice, despite further depletion of GSH by buthionine sulfoximine. Our findings indicate that GGT deficiency itself and/or altered thiol levels regulate expression of genes involved in GSH metabolism, but have no effect on the expression of other antioxidant genes.
引用
收藏
页码:556 / 562
页数:7
相关论文
共 37 条
[1]   Buthionine sulphoximine alone and in combination with melphalan (L-PAM) is highly cytotoxic for human neuroblastoma cell lines [J].
Anderson, CP ;
Tsai, J ;
Chan, W ;
Park, CK ;
Tian, L ;
Lui, RM ;
Forman, HJ ;
Reynolds, CP .
EUROPEAN JOURNAL OF CANCER, 1997, 33 (12) :2016-2019
[2]   CDNA AND DEDUCED AMINO-ACID SEQUENCE OF MURINE CU-ZN SUPEROXIDE-DISMUTASE [J].
BEWLEY, GC .
NUCLEIC ACIDS RESEARCH, 1988, 16 (06) :2728-2728
[3]   The multidrug resistance protein family [J].
Borst, P ;
Evers, R ;
Kool, M ;
Wijnholds, J .
BIOCHIMICA ET BIOPHYSICA ACTA-BIOMEMBRANES, 1999, 1461 (02) :347-357
[4]  
CARAS IW, 1985, J BIOL CHEM, V260, P7015
[5]   PROPARGYLGLYCINE INFUSION EFFECTS ON TISSUE GLUTATHIONE LEVELS, PLASMA AMINO-ACID-CONCENTRATIONS AND TISSUE MORPHOLOGY IN PARENTERALLY-FED GROWING RATS [J].
CHO, ES ;
HOVANECBROWN, J ;
TOMANEK, RJ ;
STEGINK, LD .
JOURNAL OF NUTRITION, 1991, 121 (06) :785-794
[6]   SINGLE-STEP METHOD OF RNA ISOLATION BY ACID GUANIDINIUM THIOCYANATE PHENOL CHLOROFORM EXTRACTION [J].
CHOMCZYNSKI, P ;
SACCHI, N .
ANALYTICAL BIOCHEMISTRY, 1987, 162 (01) :156-159
[7]   REGULATION OF CELLULAR GLUTATHIONE [J].
DENEKE, SM ;
FANBURG, BL .
AMERICAN JOURNAL OF PHYSIOLOGY, 1989, 257 (04) :L163-L173
[8]   THE ROLE OF THE CANALICULAR MULTISPECIFIC ORGANIC ANION TRANSPORTER IN THE DISPOSAL OF ENDOBIOTICS AND XENOBIOTICS [J].
ELFERINK, RPJO ;
JANSEN, PLM .
PHARMACOLOGY & THERAPEUTICS, 1994, 64 (01) :77-97
[9]  
FAHEY RC, 1991, ADV ENZYMOLOGY RELAT, P1
[10]   Biologic and pharmacologic regulation of mammalian glutathione synthesis [J].
Griffith, OW .
FREE RADICAL BIOLOGY AND MEDICINE, 1999, 27 (9-10) :922-935