Food additives and the atopic child.
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Biomedical subjects
Publications and source records attributed to A Kemp.
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With the sequential use of ammonium sulfate precipitation, gel filtration and chromatofocusing, we have partially purified from extracts of the submandibular glands of rats a factor (referred to as submandibular gland's immunosuppressive factor or SMG-ISF) capable of inhibiting the in vitro proliferation of mitogen- and antigen-stimulated murine lymphocytes. The semi-purified suppressor fractions had an isoelectric point of 4.4 to 4.5 and consisted of at least three molecular species. These active fractions suppressed the mitogenic effects of Concanavalin A phytohemagglutinin, and lipopolysaccharide. In vitro immune reactions such as the mixed lymphocyte culture MLC reaction and the production of cytotoxic T lymphocytes (CTL) across major histocompatibility barriers in mice were also suppressed. These in vitro immunosuppressive effects required the addition of the suppressor fractions early after the initiation of the cultures and were reversed if the factor was removed from the cultures at least 48 to 72 hr before the completion of the assays. The active fractions did not affect the proliferation of CTLL 2 cells induced by interleukin 2 (IL 2), but inhibited the mitogenic and co-stimulatory effects of IL 1 on mouse thymocytes, and in this effect showed a dose-response relation suggestive of a competitive mechanism. These characteristics of SMG-ISF indicate a specific inhibition of the activity of IL 1.
The synthesis is described of the photoaffinity label N-(4-azido-2-nitrophenyl)glycyl-(Pro-Pro-Gly)5 for the peptide binding site of prolyl 4-hydroxylase. The photoaffinity label is a good substrate and is capable of light-induced inactivation of prolyl 4-hydroxylase activity. Inactivation depends on the concentration of photoaffinity label and is prevented by competition with excess (Pro-Pro-Gly)5. Two moles of photoaffinity label per mole of enzyme is needed for 100% inactivation of enzymic activity. Oxidative decarboxylation of 2-oxoglutarate measured in the absence of added peptide substrate is not affected by labeling. We conclude that the covalently bound nitreno derivative of N-(4-azido-2-nitrophenyl)glycyl-(Pro-Pro-Gly)5 acts by preventing the binding of peptide substrate to the catalytic site without interfering with the binding of the other substrates and cofactors 2-oxoglutarate, O2, Fe2+, and ascorbate. Labeling is specific for the alpha subunit of the tetrameric alpha 2 beta 2 enzyme. In addition to two catalytic binding sites that are blocked by the photoaffinity label, the enzyme contains binding subsites for peptide substrates, as judged from the capability of photoinactivated enzyme to bind to a poly(L-proline) affinity column. These binding subsites may account for the rapidly increasing affinity for peptide substrates with increasing chain length.
8-Azido-ATP is a substrate for the ATP synthase in submitochondrial particles with a Vmax equal to 6% of the Vmax with ATP. The Km values for 8-azido-ATP are similar to those for ATP. ATP synthase in submitochondrial particles can bind maximally 2 mol 8-N-ATP or 8-N-ADP per mole and the inhibition of ATP hydrolysis by covalently bound N-ATP or N-ADP is proportional to the saturation of the enzyme with inhibitor, similar to the results obtained with isolated F1. Both 8-N-ATP and 8-N-ADP are bound mainly to the beta subunits and at all levels of saturation the distribution of the label is 77% to the beta and 23% to the alpha subunits. It is proposed that the binding of 8-azido-AXP itself is mainly to the beta subunit, but that part of the nitreno radicals formed during excitation with light reacts with an amino acid of the alpha subunit, due to the location of the binding site at an interface between a beta and an alpha subunit. Partial saturation with 8-N-ATP, under conditions that the concentration of 8-azido-ATP during the incubation is intermediate between the low and high Km values, does not abolish the apparent negative cooperativity of ATP hydrolysis. It is concluded that this apparent cooperativity is not due to the presence of two different catalytic sites, nor to a cooperativity between the two catalytic sites, but to interaction between the catalytic sites and regulatory sites.
The photoaffinity label 8-azido-ATP has been used to study the effect of inhibition of ATP synthase on ATP-driven reverse electron transfer from succinate to NAD+ ('reversal'), succinate- and NADH-driven ATP synthesis and ATP-Pi exchange. In reversal, where ATPase functions as primary proton pump, inactivation by covalently bound nitreno-ATP results in an inhibition that is proportional to the inactivation of ATP hydrolysis, or, consequently, with the concentration of inactivated ATP synthases. Up to 60% inactivation of the reversal rate does not lead to a decrease in delta mu H+. Inhibition of ATP synthase as secondary proton pump results in case of NADH-driven ATP synthesis in a proportional inhibition, but with succinate as substrate ATP synthesis is less than proportionally inhibited, compared with inactivation of ATP hydrolysis. Inhibition of one of the primary pumps of NADH-driven ATP synthesis, the NADH:Q oxidoreductase, with rotenone also resulted in an inhibition of the rate of ATP synthesis proportional to that of the NADH oxidation. ATP-Pi exchange is much more affected than ATP hydrolysis by photoinactivation with 8-azido-ATP. Contrary to reversal and NADH-driven ATP synthesis the rate of ATP-Pi exchange does not depend linearly, but quadratically on the concentration of active ATP synthases. The observed proportional relationships between inhibition of the primary or secondary pump and the inhibition of the overall energy-transfer reactions do not support the existence of a pool intermediate in energy-transduction reactions. However, the results are consistent with a direct transfer of energy from redox enzymes to ATP synthase and vice versa.
The addition of crude extracts from rat submandibular (SM) glands to murine spleen and lymph node cell cultures stimulated with concanavalin A (Con A) induced either suppression (at high concentrations) or further stimulation (at lower concentrations) or further stimulation (at lower concentrations) of proliferative activity. Gel filtration of the extracts revealed that suppressive activity was due to factors of molecular weight in the 50,000-96,000 range, while stimulation was due to factors in the 13,000-35,000 molecular weight range. The suppressor activity of the higher molecular weight fractions was not due to a reduction of cell viability or of the uptake of tritiated thymidine. This was demonstrated by the fact that the addition of IL-2 to the cultures completely reversed the suppressive effect. Further fractionation of the suppressive and of the stimulatory gel filtration fractions with the chromatofocusing technique led to the identification of a single fraction with suppressor activity and of multiple discrete fractions with stimulatory activity.
Symptoms of rhinitis in 595 children who attended an allergy clinic over a four-year period were examined to determine the relative frequencies of perennial rhinitis and seasonal rhinitis (hay fever). Perennial rhinitis was much more common than seasonal rhinitis at all ages, and only 12% of children with rhinitis had symptoms restricted to the grass pollen season. The detection of eosinophils in nasal smears from subjects with rhinitis was uncommon (10% of cases), while mast cells were found in one third of cases. Rhinitis was the most common symptom of atopic disease.
In the absence of a peptidylproline substrate, the oxidative decarboxylation of 2-oxoglutarate by prolyl 4-hydroxylase (prolyl-glycyl-peptide,2-oxoglutarate:oxygen oxidoreductase (4-hydroxylating), EC 1.14.11.2) is stoicheiometrically coupled to the oxidation of ascorbate. The Km and Kd for O2 in this partial reaction are 1.5 mM, this value being one order of magnitude higher than the Km and Kd for O2 in the complete reaction in the presence of (Pro-Pro-Gly)5, indicating that in this case O2 can become enzyme-bound predominantly after the interaction of the peptide substrate with the enzyme. The Km values for 2-oxoglutarate in the partial and the complete reactions are the same. In the absence of both a peptide substrate and ascorbate 2 mol CO2 per mol enzyme are produced in the first 1-1.5 min, during which the enzyme becomes inactivated and, as shown earlier (De Jong , L., Albracht , S.P.J. and Kemp, A. (1982) Biochim. Biophys. Acta 704, 326-332) enzyme-bound Fe2+ becomes oxidized to Fe3+. The results are consistent with a mechanism in which a Fe2+O complex is the O-transferring intermediate involved in peptidylproline hydroxylation.
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Lymphomatoid papulosis was seen in an 11-month-old child. The condition resolved spontaneously after a course of only 8 weeks and the patient has now been disease free for 9 months. Electron microscopy showed infiltrating lymphocytes with cleaved nuclei suggestive of T cells. Monoclonal antibody studies confirmed the T cell nature of the infiltrate. In this case, suppressor (OKT8) T cells were more prominent than helper (OKT4) T cells, in contrast to previous reports.
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A linear relationship was found between the activity of prolyl 4-hydroxylase (EC 1.14.11.2) and the amount of Fe2+ bound per mol enzyme. At maximal activity (2.1 mumol X min-1 per mg protein) the enzyme contains 2.1 mol Fe2+ specifically bound per mol enzyme tetramer, indicating two Fe2+-binding sites on prolyl 4-hydroxylase. The half-maximal concentration of added Fe2+ for enzyme activity depends on the nature of sulphydryl compounds present in the reaction medium.
1. Treatment of prolyl 4-hydroxylase (prolyl-glycyl-peptide, 2-oxoglutarate:oxygen oxidoreductase (4-hydroxylating), EC 1.14.11.2) with 2-oxoglutarate in the absence of added Fe2+ for 10 s causes partial inactivation of the enzyme which is not reversed by subsequent addition of Fe2+. It appears that 2-oxoglutarate prevents loss of enzyme-bound iron and prevents access of added iron to its binding site. 2. For optimal enzyme activity the enzyme should be preincubated for 15 s with Fe2+ (5 microM). 3. Under turnover conditions prolyl 4-hydroxylase does not release iron. 4. The inactivation brought about by pre-incubation with 2-oxoglutarate and O2 in the absence of ascorbate is partly reversed by removal of 2-oxoglutarate. 5. It is proposed that dead-end complex formation with 2-oxoglutarate is responsible for the inactivation of the enzyme by 2-oxoglutarate in the absence of either ascorbate or Fe2+. 6. Optimal enzyme activity is obtained if the reactants are added to the reaction medium in the following order: enzyme, iron and ascorbate in any order, then after at least 15 s 2-oxoglutarate and finally (Pro-Pro-Gly)5 to start the reaction.
In agreement with others (Myllylä, R., Kuutti-Savolainen, E.-R. and Kivirikko, K.I. (1978) Biochem. Biophys. Res. Commun. 83, 441-448), it was found that, in the absence of ascorbate, prolyl 4-hydroxylase (prolyl-glycyl-peptide, 2-oxoglutarate:oxygen oxidoreductase (4-hydroxylating), EC 1.14.11.2) catalyses the hydroxylation of peptidyl proline, stoicheiometrically coupled to the oxidative decarboxylation of 2-oxoglutarate, at a high initial rate. Under these conditions the enzyme becomes inactivated by at least 90% within 1 min in the presence of 400 microM 2-oxoglutarate, in the presence or absence of the peptide substrate (Pro-Pro-Gly)10. The enzyme can be partly reactivated by ascorbate, but not by Fe2+. Addition of a stoicheiometric amount of iron to the enzyme gives rise to a small EPR signal at g = 4.3, which is typical of a high-spin d 5 ion in a rhombic environment. After subsequent incubation for 30 s at 37 degrees C in the presence of 2-oxoglutarate, the amplitude of the EPR signal at g = 4.3 increases 3-4-fold and corresponds to virtually all of the iron added. In addition, an EPR signal at g = 2.0 is formed under these conditions. The signal at g = 4.3 decreases after subsequent addition of ascorbate. It is concluded that in the presence of 2-oxoglutarate enzyme-bound Fe2+ is rapidly converted to Fe3+, leading to inactivation of the enzyme. Enzyme-bound Fe3+ can be reduced again by ascorbate, thus reactivating the enzyme, or, in the absence of 2-oxoglutarate, by Fe2+.
A child with Fanconi's anaemia diagnosed at 7 years of age presented in adult life with lymphopenia, recurrent warts and Bowen's disease. The latter resulted in the development of multiple cutaneous squamous cell carcinomas which metastasized to the skeleton. Investigation of her immune function revealed selective defects in natural killer (NK) cell activity. Humoral immunity and several tests of cell-mediated responses were within normal or became normal after treatment with levamisole or transfer factor. Analysis of the defect in NK activity revealed that low levels could be induced in vitro by fibroblast interferon. Stimulation of blood lymphocytes from the patient with the interferon inducer poly (I)-poly (C) resulted in an increase in NK activity but incubation of her lymphocytes on tumour cells did not result in an increase in NK activity or the release of interferon. This contrasted with the marked increase in NK activity and interferon release observed when lymphocytes from normal controls were incubated on tumor cells. These findings suggested the absence of NK activity in this patient was secondary to a defect in interferon release from lymphocytes on exposure to tumour antigens. It is considered that these defects may have been an important predisposing factor in the development of malignancy in this patient and possibly other patients with Fanconi's anaemia.
1. Incubation of prolyl 4-hydroxylase (prolyl-glycyl-peptide, 2-oxoglutarate : oxygen oxidoreductase (4-hydroxylating), EC 1.14.11.2) with H2O2 leads to a decrease of 50% in the specific activity of enzyme tetramers, followed by dissociation into inactive dimers in which the monomers are covalently cross-linked by S-S bridge formation. 2. Incubation of the enzyme with K3Fe(CN)6 leads to a comparable decrease in activity of enzyme tetramers. Addition of urea leads to dissociation into inactive dimers with similarly cross-linked monomers. 3. Removal of the dissociating agent leads to reassociation of cross-linked dimers to tetramers and to about 50% reactivation. The enzyme is further reactivated by preincubation with dithiothreitol. 4. Dissociation of the enzyme with dithiothreitol, urea or LiCl, or at low pH (4.15) produces inactive monomers, which could not be reassociated.
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