Search PubMed⌕ Search

Biomedical subjects

V Herbert

Publications and source records attributed to V Herbert.

At least 145 records · Page 8Linked to original sources

A simple method for the separate measurement of transcobalamins I, II, and III: normal ranges in serum and plasma in men and women.

A simple method for the separate measurement of the unsaturated binding capacity of the three main circulating vitamin B12 binders, transcobalamins (TCs) I, II, and III, is described. The method involves batch separation of TC I and III from TC II by means of Quso G32, followed by batch separation of TC I from TC II with the use of diethylaminoethyl. The present study provides the first complete comparison of unsaturated TC I, II, and III in serum versus fluoridinated plasma of a single group of normal men versus women. There are consistently higher values in serum, largely due to an in vitro increment of TC III, prevented by NaF. The results are compared with values for some of these parameters obtained by others with the use of different methods, providing a standard for evaluating significance of results by various methods.

Adult↗

Anemias.

Explore the source record for details and available documents.

Adult↗

Zinc deficiency.

Explore the source record for details and available documents.

Child↗

Vitamin B12--folate interrelations.

Megaloblastic anaemia is due to a derangement of DNA synthesis caused by insufficient supply of one or other of the four deoxyribonucleoside triphosphate (dNTP) precursors of DNA synthesis or by direct inhibition of one or other DNA polymerase. Reduced supply of the pyrimidine deoxythymidine triphosphate (dTTP) may be caused by folate or vitamin B12 deficiencies or by the action of dihydrofolate reductase inhibitors (e.g. methotrexate, pyrimethamine or trimethoprim), all of which cause reduced supply of the coenzyme 5, 10 methylene tetrahydrofolate (pentaglutamate) needed for thymidylate synthetase. Reduced dTTP supply may also be caused by direct inhibition of thymidylate synthetase by 5-fluorouracil. Reduced supply of both purines, deoxyadenosine triphosphate (dATP) and deoxyguanosine triphosphate (dGTP), may be caused by hydroxyurea, 6-mercaptopurine (and probably by another purine antagonist azaserine), whilst reduced supply of both pyrimidine DNA precursors, dTTP and dCTP (deoxycytidine triphosphate) may be due to inherited orotic aciduria or to treatment with azauridine. Cytosine arabinoside directly inhibits DNA polymerase. DNA replication is a discontinuous process and a number of enzymes are concerned with different aspects of the process. The parental strands partly unwind and a large number of initiation points or origins are activated on both strands. A primer RNA is first synthesised using the parental strand of DNA as template. Fragments of new DNA are then synthesised on the parental DNA template, starting at the RNA primer, under the action of one or other DNA polymerase (probably gamma). The RNA primer is then removed and the gap left is filled by further DNA synthesis under the action of a different DNA polymerase (probably alpha). The fragments of new DNA are joined to give newly synthesised stretches of DNA (replicons) which are then liigated together to form bulk DNA of enormous molecular weight. It is suggested here that reduced supply of one or other of the four deoxyribonucleoside triphosphate (dNTP) during the 'S' phase of the cell cycle (due to vitamin B12 or folate deficiency, drug treatment or other congenital or acquired abnormality in synthesis of the dNTP) impairs the cell's ability to elongate newly initiated DNA fragments by preventing gap-filling, the polymerase needed for gap-filling requiring substantially greater concentrations of the deoxyribonucleoside triphosphates than the polymerase involved in chain initiation. Cytosine arabinoside, which also may cause megaloblastosis, may affect principally the synthesis of new DNA fragments. Since active protein synthesis is needed for the cell to enter the S phase and RNA synthesis is needed to prime new DNA synthesis, megaloblastic anaemia may be expected to occur only when DNA synthesis is inhibited but protein and RNA synthesis are relatively unimpaired...

Anemia, Megaloblastic↗

Total folate binding capacity of normal human plasma, and variations in uremia, cirrhosis, and pregnancy.

The current study presents evidence that all human serum contains a class of high-affinity folate binders (KA=2.8 X10(10 liters/mole), which migrate as a single peak on gel filtration. Failure of previous studies to detect this characteristic in all but a minority of subjects is attributable to its variable, often total, saturation. Direct measurement of the total folate binding capacity (TFBC) has been made possible by dissociation of endogenous folate-binder complexes at acid pH, removal of free folate by coated charcoal, and radiofolate tagging. This procedure does not appear to significantly denature the binders, which release and rebind similar quantities of 3H-PGA. In 20 normal subjects, TFBC ranged from 100 to 325 pg/ml (mean+/-SE = 174+/-16), and was always at least 33% saturated. In three clinical conditions, all associated with elevated unsaturated folate binding capacity, three different patterns emerged when TFBC was also measured. Uremic subjects had significantly elevated mean TFBC with normal saturation. In cirrhotic subjects, mean TFBC approximated normal, but saturation was significantly decreased. In pregnancy, two groups were seen: one with increased TFBC and the other with a normal TFBC, some of whom had decreased saturation. Lactobacillus casei serum folate level was about 30 times greater than the TFBC; there was no correlation between the two measurements.

Adsorption↗

Radioassay for serum and red cell folate.

A simple, reliable assay for serum and red cell folate is described. It uses plain untreated liquid or powdered milk, requiring no special handling or purification, as binder. Such milk makes it possible to ignore endogenous serum folate binder, since crude (but not purified) milk contains a factor which releases folate from serum binder. It simplifies counting radioactivity by employing a gamma emitting isotope of pteroylglutamic acid (PGA), namely the 125I-tyramide of PGA. Like the 3H-PGA assay of Givas and Gutcho, it permits the use of stable PGA rather than unstable methyltetrahydrofolic acid (MeTHFA) standards, because it is carried out at pH 9.3, a pH at which milk folate binder is unable to distinguish PGA from MeTHFA, which is the predominat folate in human tissues. The equipment required to do the radioassay is present in most diagnostic chemistry laboratories. Results are essentially identical to the generally accepted Lactobacillus casel microbiologic method of folate assay, except that false low results are not produced in the radioassay by antibiotics, tranquilizers, and chemotherapeutic agents. Three caveats in its use are the relative instability of 125I-PGA as compared to 3H-PGA, the fact that various powdered milks differ widely in folate-binding capacity, and that only about 60 per cent of commercially obtained skim or powdered milk preparations appear to contain the substance which splits folate from serum binder.

Animals↗