Characterization of Candida albicans RNA triphosphatase and mutational analysis of its active site
Open Access
- 1 May 2000
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 28 (9) , 1885-1892
- https://doi.org/10.1093/nar/28.9.1885
Abstract
The RNA triphosphatase component (CaCet1p) of the mRNA capping apparatus of the pathogenic fungus Candida albicans differs mechanistically and structurally from the RNA triphosphatase of mammals. Hence, CaCet1p is an attractive antifungal target. Here we identify a C-terminal catalytic domain of CaCet1p from residue 257 to 520 and characterize a manganese-dependent and cobalt-dependent NTPase activity intrinsic to CaCet1p. The NTPase can be exploited to screen in vitro for inhibitors. The amino acids that comprise the active site of CaCet1p were identified by alanine-scanning mutagenesis, which was guided by the crystal structure of the homologous RNA triphosphatase from Saccharomyces cerevisiae (Cet1p). Thirteen residues required for the phosphohydrolase activity of CaCet1p (Glu287, Glu289, Asp363, Arg379, Lys396, Glu420, Arg441, Lys443, Arg445, Asp458, Glu472, Glu474 and Glu476) are located within the hydrophilic interior of an eight-strand β barrel of Cet1p. Each of the eight strands contributes at least one essential amino acid. The essential CaCet1p residues include all of the side chains that coordinate manganese and sulfate (i.e., γ phosphate) in the Cet1p product complex. These results suggest that the active site structure and catalytic mechanism are conserved among fungal RNA triphosphatases.Keywords
This publication has 16 references indexed in Scilit:
- An essential surface motif (WAQKW) of yeast RNA triphosphatase mediates formation of the mRNA capping enzyme complex with RNA guanylyltransferaseNucleic Acids Research, 1999
- Structure and Mechanism of Yeast RNA TriphosphataseCell, 1999
- Mutational Analyses of Yeast RNA Triphosphatases Highlight a Common Mechanism of Metal-dependent NTP Hydrolysis and a Means of Targeting Enzymes to Pre-mRNAs in Vivo by Fusion to the Guanylyltransferase Component of the Capping ApparatusJournal of Biological Chemistry, 1999
- Yeast and Viral RNA 5′ Triphosphatases Comprise a New Nucleoside Triphosphatase FamilyJournal of Biological Chemistry, 1998
- Isolation and characterization of the Candida albicans gene for mRNA 5′‐triphosphatase: association of mRNA 5′‐triphosphatase and mRNA 5′‐guanylyltransferase activities is essential for the function of mRNA 5′‐capping enzyme in vivo1FEBS Letters, 1998
- The Guanylyltransferase Domain of Mammalian mRNA Capping Enzyme Binds to the Phosphorylated Carboxyl-terminal Domain of RNA Polymerase IIPublished by Elsevier ,1998
- Isolation and Characterization of the Yeast mRNA Capping Enzyme β Subunit Gene Encoding RNA 5′-Triphosphatase, Which Is Essential for Cell ViabilityBiochemical and Biophysical Research Communications, 1997
- An RNA 5′-Triphosphatase Related to the Protein Tyrosine PhosphatasesCell, 1997
- Characterization of the Vaccinia Virus RNA 5′-Triphosphatase and Nucleoside Triphosphate Phosphohydrolase ActivitiesJournal of Biological Chemistry, 1996
- SETOR: Hardware-lighted three-dimensional solid model representations of macromoleculesJournal of Molecular Graphics, 1993