Subunit diversity and tissue distribution of human glutathione S-transferases: interpretations based on electrospray ionization-MS and peptide sequence-specific antisera
Open Access
- 15 July 1997
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 325 (2) , 481-486
- https://doi.org/10.1042/bj3250481
Abstract
Uncertainties about the composition and identities of glutathione S-transferases (GSTs) in human tissue have impeded studies on their biological functions. A rigorous protocol has therefore been developed to characterize the human proteins. Cytosolic GST subunits were resolved by reverse-phase HPLC methods, individual components were assigned to Alpha, Mu and Pi classes on the basis of their immunoreactivities, and peptide-sequence-specific antisera were used to distinguish among five different Mu-class subunits (GSTM1–GSTM5). Each subunit type was characterized and identified unambiguously by electrospray ionization-MS. Acetylation of N-terminal residues in the GSTA1, GSTA2, GSTM3 and GSTM4 subunits were the only natural post-translational modifications detected. The unique structure of GSTM3, with N- and C-terminal peptide extensions predicted from cDNA sequences, was confirmed. Only testis and brain were rich sources of GSTM3 subunits. Subunit profiles were distinct and characteristic of the particular tissue type, and this tissue specificity in GST expression was evident even in organs from different individuals. For instance, livers had relatively simple GST compositions, consisting of a preponderance of Alpha-class subunits and GSTM1 (when present). By contrast, representation of most subunit types was a characteristic feature of testis, which had the highest levels of GSTs. GSTM4 and GSTM5 subunits, here identified for the first time in human tissue extracts, were minor components, with GSTM5 found only in brain, lung and testis. Specimens devoid of GSTM1 subunits, particularly those from null-genotype individuals, were readily discerned at the protein level. Liver was the only rich source of the GSTM1 subunit (although it also constituted a major fraction of adrenal GSTs), and so the functional consequences of the GSTM1 gene deletion are likely to vary in extrahepatic tissues.Keywords
This publication has 33 references indexed in Scilit:
- Invited Commentary Potential Contribution of the Glutathione S-Transferase Supergene Family to Resistance to Oxidative StressFree Radical Research, 1995
- Variation in the expression of Mu-class glutathione S-transferase isoenzymes from human skeletal muscle. Evidence for the existence of heterodimersBiochemical Journal, 1991
- The enzymes of detoxication.1990
- A distinct human testis and brain mu-class glutathione S-transferase. Molecular cloning and characterization of a form present even in individuals lacking hepatic type mu isoenzymes.Journal of Biological Chemistry, 1990
- Evidence that glutathione S-transferases B1B1 and B2B2 are the products of separate genes and that their expression in human liver is subject to inter-individual variation. Molecular relationships between the B1 and B2 subunits and other Alpha class glutathione S-transferasesBiochemical Journal, 1989
- Glutathione S-transferase is an in vitro substrate of Ca++-phospholipid-dependent protein kinase (protein kinase C)Biochemical and Biophysical Research Communications, 1989
- Structure of the human genomic glutathione S-transferase-π geneGene, 1989
- Hereditary differences in the expression of the human glutathione transferase active on trans-stilbene oxide are due to a gene deletion.Proceedings of the National Academy of Sciences, 1988
- Glutathione Transferases—Structure and Catalytic ActivitCritical Reviews in Biochemistry, 1988
- Intracellular Binding and Transport of Hormones and Xenobiotics by Glutathiones-TransferasesDrug Metabolism Reviews, 1988