Macromolecular association of ADP-ribosyltransferase and its correlation with enzymic activity
- 15 August 1990
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 270 (1), 17-26
- https://doi.org/10.1042/bj2700017
Abstract
The macromolecular self-association of ADP-ribosyltransferase protein in solution was studied by several experimental techniques: quantitative gel filtration, electrophoretic analyses in non-denaturing gels, and cross-linking the enzyme protein with glutaraldehyde, dimethyl pimelimidate, dimethyl suberimidate, dimethyl 3,3′-dithiobisproprionimidate and tetranitromethane. The self-association of the polypeptide components obtained by plasmin digestion was also determined by using the above cross-linking agents. Monomers and cross-linked dimers of the enzyme protein, possessing enzymic activity, were separated in non-denaturing gels by electrophoresis. The basic polypeptide fragments, exhibiting molecular masses of 29 kDa and 36 kDa, self-associated, whereas the polypeptides with molecular masses of 56 kDa and 42 kDa associated only to a negligible extent, indicating that the peptide regions that also bind DNA and histones are probable sites of self-association in the intact enzyme molecule. Macromolecular association of the enzyme was indicated by a protein-concentration-dependent red-shift in protein fluorescence. The specific enzymic activity of the isolated ADP-ribosyltransferase depended on the concentration of the enzyme protein, and at 2.00 microM concentration the enzyme was self-inhibitory. Dilution of the enzyme protein to 30-40 nM resulted in a large increase in its specific activity. Further dilution to 1-3 nM coincided with a marked decrease of specific activity. Direct enzymic assays of electrophoretically separated monomers and cross-linked dimers demonstrated that the dimer appears to be the active molecular species that catalyses poly(ADP-ribose) synthesis. The NAD+ glycohydrolase activity of the enzyme was also dependent on protein concentration and was highest at 1-3 nM enzyme concentration, when polymerase activity was minimal, indicating that the monomeric enzyme behaved as a glycohydrolase, whereas poly(ADP-ribosyl)ation of enzyme molecules was maximal when the enzyme tends to be self-associated to the dimeric form.This publication has 38 references indexed in Scilit:
- Cellular regulation of ADP-ribosylation of proteinsExperimental Cell Research, 1989
- Binding of adenosine diphosphoribosyltransferase to the termini and internal regions of linear DNAsBiochemistry, 1989
- Interleukin-2 self-associationBiochemical and Biophysical Research Communications, 1988
- Catalytic activities of synthetic octadeoxyribonucleotides as coenzymes of poly(ADP‐ribose) polymerase and the identification of a new enzyme inhibitory siteFEBS Letters, 1987
- Mechanisms of poly(ADP‐ribose) polymerase catalysis; mono‐ADP‐ribosylation of poly(ADP‐ribose) polymerase at nanomolar concentrations of NADFEBS Letters, 1986
- Rearrangements of integral membrane components during in vitro aging of sheep erythrocyte membranesThe Journal of cell biology, 1977
- GLUTARALDEHYDE FIXATION OF ISOLATED EUCARYOTIC NUCLEIThe Journal of cell biology, 1973
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970
- Glutaraldehyde as a protein cross-linking reagentJournal of Molecular Biology, 1968
- Quantitative cytology and cytopathology. I. Measurement of the thickness, the volume, the hydrous mass, and the anhydrous mass of living cells by interference microscopyCancer, 1953