Search PubMed⌕ Search

PubMed · 7346162

Oxidation and metabolic interconversion in malignant cachexia.

Abstract

Some patients with progressive malignant disease have an increase in basal metabolic expenditure as well as total caloric expenditure, but the findings are neither striking nor consistent. Studies of specific metabolic changes in such patients have shown the following. (a) The predominant substrate for energy in these subjects is fatty acid, as in normal humans. Comparative studies show, however, that greater proportions of the oxidative metabolism in patients with cancer are from fatty acids, particularly when exogenous glucose is available. While the free fatty acid levels in plasma decrease appropriately with glucose administration, current evidence suggests that the levels of free fatty acids themselves may not necessarily be directly related to the various disposal mechanisms. (b) Increased glycolysis and gluconeogenesis are present after overnight fasting in the patients with malignant disease, but these processes, which depend on liver metabolism, are appropriately suppressed with exogenous glucose. (c) Evidence is presented that leucine, an amino acid representative of branched-chain amino acids, is not under normal metabolic control in these subjects. For example, semistarvation does not result in diminished levels of branched-chain amino acids as it does in other patients. Also, glucose does not have its ordinary suppressive effect on branched-chain amino acid levels. Leucine turnover is increased in these patients as is the percentage of leucine flux which is oxidized. Limited data support the oxidation of this amino acid. All these data suggest that the peripheral effects of insulin and glucose may not be normally mediated in these subjects. They also suggest that amino acid metabolism and consequently protein metabolism may be unaffected by normal control factors in malignant disease.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

C Waterhouse. 1981. Oxidation and metabolic interconversion in malignant cachexia.. https://pubmed.ncbi.nlm.nih.gov/7346162/

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Chimeric structural isomer fragments as cost-efficient internal standards for amino acid quantification by mass spectrometry.

Amino acid (AA) profiles from body fluids such as blood and urine are clinical indicators for diagnosing metabolic and hepatic diseases. Current quantitative methods, such as liquid chromatography-mass spectrometry (LC-MS) with isotopically labelled internal standards (ISs), are costly and technically demanding. This study proposes a cost-efficient alternative using structural isomers as ISs in a direct liquid infusion (DLI) tandem mass spectrometry (MS/MS) approach. The method leverages chimeric spectra and fragment intensity ratios to quantify AAs, demonstrating high linearity and precision even with a 3D ion trap mass analyser. This approach offers a viable strategy for AA quantification in preventive medicine, particularly for screening metabolic diseases such as phenylketonuria, diabetes, and liver dysfunction.

Amino Acids↗

MODEL-molecular descriptor lab: a web-based server for computing structural and physicochemical features of compounds.

Molecular descriptors represent structural and physicochemical features of compounds. They have been extensively used for developing statistical models, such as quantitative structure activity relationship (QSAR) and artificial neural networks (NN), for computer prediction of the pharmacodynamic, pharmacokinetic, or toxicological properties of compounds from their structure. While computer programs have been developed for computing molecular descriptors, there is a lack of a freely accessible one. We have developed a web-based server, MODEL (Molecular Descriptor Lab), for computing a comprehensive set of 3,778 molecular descriptors, which is significantly more than the approximately 1,600 molecular descriptors computed by other software. Our computational algorithms have been extensively tested and the computed molecular descriptors have been used in a number of published works of statistical models for predicting variety of pharmacodynamic, pharmacokinetic, and toxicological properties of compounds. Several testing studies on the computed molecular descriptors are discussed. MODEL is accessible at http://jing.cz3.nus.edu.sg/cgi-bin/model/model.cgi free of charge for academic use.

Amino Acids↗

The penicillin G acylase production by B. megaterium is amino acid consumption dependent.

Aiming at to enhance the production of penicillin G acylase (PGA) by Bacillus megaterium, we have performed flasks experiments using different medium composition. Using 51 g/L of casein hydrolyzed with Alcalase and 2.7 g/L of phenylacetic acid (PhAc), the following carbon substrates were tested, individually and combined: glucose, glycerol, and lactose (present in cheese whey). Glycerol and glucose showed to be effective nutrients for the microorganism growth but delayed the PGA production. Cheese whey always increased enzyme production and cell mass. However, lactose (present in cheese whey) was not a significant carbon source for B. megaterium. PhAc, amino acids, and small peptides present in the hydrolyzed casein were the actual carbon sources for enzyme production. Replacement of hydrolyzed casein by free amino acids, 10.0 g/L, led to a significant increase in enzyme production (app. 150%), with a preferential consumption of alanine, aspartic acid, glycine, serine, arginine, threonine, lysine, and glutamic acid. A decrease of the enzyme production was observed when 20.0 g/L of amino acids were used. Using the single omission technique, it was shown that none of the 18 tested amino acids was essential for enzyme production. The use of a medium containing eight of the preferentially consumed amino acids lead to similar enzyme production level obtained when using 18 amino acids. PhAc, up to 2.7 g/L, did not inhibit enzyme production, even if added at the beginning of the cultivation.

Amino Acids↗