Abstract
Changes in apparent pH occurring during fast freezing of aqueous buffer solutions and cooling to -196 degrees C were studied by various semiquantitative methods, including simple visual measurements of colour changes with pH indicators, as well as measurements of pH-dependent changes in the e.p.r. (electron paramagnetic resonance) spectra of solutions of three different metalloenzymes. It is concluded that apparent pH changes of up to about 3pH units may occur under particular conditions. Such changes were independent of the time taken to freeze the samples, when this was varied from about 3ms t0 20s, but were affected by the presence of some proteins in solution. Recommendations on the buffers that should be used to avoid such apparent pH changes in e.p.r. spectroscopy and other low-temperature biochemical work are made. Phosphate and pyrophosphate buffers, which gave large decreases (2-3 pH units), and Tris, which under some conditions gave increases of about the same magnitude, are to be avoided. Certain zwitterionic buffers such as Bicine [NN-bis-(2-hydroxyethyl)glycine] are satisfactory. Apparent pH effects were found to depend on buffer and protein concentration. It is therefore recommended that as a prelude to future detailed low-temperature biochemical work, appropriate tests with an indicator system should be performed.
MeSH Terms
Buffers
Catalase
Copper
Edetic Acid
Electron Spin Resonance Spectroscopy
Freezing
Hydrogen-Ion Concentration
Indicators and Reagents
Nitrate Reductases
Proteins
Xanthine Oxidase
Chemicals
Buffers
Indicators and Reagents
Proteins
Copper
Edetic Acid
Catalase
Xanthine Oxidase
Nitrate Reductases
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Williams-Smith D L
Bray R C
Barber M J
Tsopanakis A D
Vincent S P
References (14)
14 references, click to expand
-
Sudden freezing as a technique for the study of rapid reactions.
Biochem J. 1961 Oct;81:189-93
PMID: 13872669
-
IMMUNOCHEMICAL STUDIES ON LIVER AND ERYTHROCYTE CATALASES FROM CATTLE, HORSE, RABBIT AND HUMAN.
Biochim Biophys Acta. 1964 Apr 6;85:38-49
PMID: 14159301
-
The effect of pH upon the equilibria of catalase compounds.
J Biol Chem. 1952 Feb;194(2):483-96
PMID: 14927639
-
Induced changes in the electron paramagnetic resonance spectra of mammalian catalases.
Biochim Biophys Acta. 1975 Oct 20;405(2):243-52
PMID: 170980
-
Electron-paramagnetic-resonance studies on the molybdenum of nitrate reductase from Escherichia coli K12.
Biochem J. 1976 Apr 1;155(1):201-3
PMID: 180982
-
Oxidation-reduction potentials of molybdenum, flavin and iron-sulphur centres in milk xanthine oxidase.
Biochem J. 1976 Aug 1;157(2):469-78
PMID: 183752
-
The pH dependence of the hydrolysis of benzoyl-L-arginine ethyl ester in cooled mixed solvents.
J Biol Chem. 1975 Feb 25;250(4):1376-82
PMID: 234453
-
The regulation of rat liver xanthine oxidase. Conversion in vitro of the enzyme activity from dehydrogenase (type D) to oxidase (type O).
J Biol Chem. 1969 Jul 25;244(14):3855-63
PMID: 4308738
-
Spin-spin interaction between molybdenum and one of the iron-sulphur systems of xanthine oxidase and its relevance to the enzymic mechanism.
Biochem J. 1972 Nov;130(1):239-49
PMID: 4347785
-
The reaction of xanthine oxidase with molecular oxygen.
J Biol Chem. 1974 Jul 25;249(14):4350-62
PMID: 4367214
-
The use of subzero temperatures in biochemistry: slow reactions.
Methods Biochem Anal. 1974;22:401-512
PMID: 4373636
-
Ionic strength and protonic activity of supercooled solutions used in experiments with enzyme systems.
J Biol Chem. 1973 Jul 10;248(13):4649-54
PMID: 4718738
-
Hydrogen ion buffers for biological research.
Biochemistry. 1966 Feb;5(2):467-77
PMID: 5942950
-
Purification and some properties of nitrate reductase (EC 1.7.99.4) from Escherichia coli K12.
Biochem J. 1976 Mar 1;153(3):533-41
PMID: 782444