Scinovex
review Open AccessTop 1% cited

Structure, function and evolution of glutathione transferases: implications for classification of non-mammalian members of an ancient enzyme superfamily

Biochemical Journal · 2001 · Vol. 360(1) · pp. 1–1
David SheehanGerardene MEADEVivienne FoleyCatriona A. DOWD

Abstract

The glutathione transferases (GSTs; also known as glutathione S-transferases) are major phase II detoxification enzymes found mainly in the cytosol. In addition to their role in catalysing the conjugation of electrophilic substrates to glutathione (GSH), these enzymes also carry out a range of other functions. They have peroxidase and isomerase activities, they can inhibit the Jun N-terminal kinase (thus protecting cells against H(2)O(2)-induced cell death), and they are able to bind non-catalytically a wide range of endogenous and exogenous ligands. Cytosolic GSTs of mammals have been particularly well characterized, and were originally classified into Alpha, Mu, Pi and Theta classes on the basis of a combination of criteria such as substrate/inhibitor specificity, primary and tertiary structure similarities and immunological identity. Non-mammalian GSTs have been much less well characterized, but have provided a disproportionately large number of three-dimensional structures, thus extending our structure-function knowledge of the superfamily as a whole. Moreover, several novel classes identified in non-mammalian species have been subsequently identified in mammals, sometimes carrying out functions not previously associated with GSTs. These studies have revealed that the GSTs comprise a widespread and highly versatile superfamily which show similarities to non-GST stress-related proteins. Independent classification systems have arisen for groups of organisms such as plants and insects. This review surveys the classification of GSTs in non-mammalian sources, such as bacteria, fungi, plants, insects and helminths, and attempts to relate them to the more mainstream classification system for mammalian enzymes. The implications of this classification with regard to the evolution of GSTs are discussed.

Glutathione Transferases and PolymorphismsGenomics, phytochemicals, and oxidative stressSUPERFAMILYEnzymeGlutathione transferaseFunction (biology)BiochemistryGlutathioneBiologyEvolutionary biologyGeneticsComputational biology

MeSH terms

AnimalsBinding SitesCatalysisCytosolGlutathione TransferaseHydrogen PeroxideModels, BiologicalModels, ChemicalModels, MolecularPolymorphism, GeneticProtein BindingProtein ConformationStructure-Activity RelationshipThioredoxinsXenobiotics
Citations
1,524
FWCI
11.69
field-weighted impact
References
208
Percentile
99%
vs. same field & year
Citations per year
Cited by
Molecular and structural antioxidant defenses against oxidative stress in animals
American Journal of Physiology-Regulatory, Integrative and Comparative Physiology · 2011 · 358 citations
Glutathione transferases, regulators of cellular metabolism and physiology
Biochimica et Biophysica Acta (BBA) - General Subjects · 2012 · 416 citations
Glutathione catalysis and the reaction mechanisms of glutathione-dependent enzymes
Biochimica et Biophysica Acta (BBA) - General Subjects · 2012 · 1,068 citations
References
Insecticide Resistance and Vector Control
Emerging infectious diseases · 1998 · 604 citations
BIOCHEMISTRY OF MULTIDRUG RESISTANCE MEDIATED BY THE MULTIDRUG TRANSPORTER
Annual Review of Biochemistry · 1993 · 3,504 citations
Regulation of JNK signaling by GSTp
The EMBO Journal · 1999 · 1,120 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.