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Biomedical subjects

J R Griffiths

Publications and source records attributed to J R Griffiths.

At least 145 records · Page 8Linked to original sources

Glycogenolysis in liver of phosphorylase kinase-deficient rats during liver perfusion and ischaemia.

Liver glycogen degradation and phosphorylase activity were measured in normal and phosphorylase kinase-deficient (gsd/gsd) rats. During perfusion or ischaemia, gsd/gsd-rat livers showed a brisk glycogenolysis. There was also a small (1.9-fold) but significant transient increase in their phosphorylase alpha activity during ischaemia, despite their phosphorylase b kinase deficiency; it seems unlikely, however, that this was the main determinant of the glycogenolysis.

Animals↗

Detection of glycogen in a glycogen storage disease by 13C nuclear magnetic resonance.

The livers of gsd/gsd rats homozygous for the glycogen storage disease phosphorylase b kinase deficiency were observed by 13C NMR using a surface coil. Clear signals were detected from glycogen. The concentration of glycogen as determined by NMR was approximately 3-times that found in normal strains agreeing well with chemical determinations. Starvation did not significantly reduce the glycogen content of the livers with glycogen storage disease whereas it reduced the signal below detectability in normal rats. Difference spectra of starved normal rats from fed gsd/gsd rats gave spectra similar in appearance to that of purified glycogen. Glycogen both in vivo and in vitro is fully visible using 13C NMR.

Animals↗

Inosine metabolism in the rat.

1. Uptake and subsequent metabolism of purine and ribose moieties was monitored after intravenous administration of doubly labelled inosine. 2. More than 95% was cleared from the plasma within 5 min, and 99% within 20 min. 3. Approx. 50% of the 160 mumol total was rapidly incorporated into liver and kidney. Kidney removed the greatest amount (21 mumol/g wet wt.), about 10-fold more than heart, lung or liver. Lung and heart accounted for only 3%. These tissues then lost radioactivity during the remainder of the experiment. Radioactivity in the skeletal muscle, in contrast, increased from 8% of the injected dose at 5 min to 40% at 60 min. 4. In liver, kidney, heart and lung there was a significant difference in the fate of inosine. After initial incorporation of inosine, kidney predominantly lost inosine; heart preferentially lost purines; lung preferentially lost ribose radioactivity; and in liver the ribose radioactivity was rapidly lost, whereas purine was retained. Some of the ribose moiety was metabolized to glucose, presumably in the liver, and then released into the blood. Ribose radioactivity (probably as glucose) and radioactive hypoxanthine accumulated in skeletal muscle throughout the experiment. 5. Inosine caused a rapid and prolonged increase in the blood glucose content, from 6 to 15 mM in 60 min. This was accompanied by a small increase in plasma insulin. 6. It is concluded that the purine and ribose radioactivity lost from the kidney, liver and other tissues becomes incorporated into skeletal muscle.

Animals↗

NMR studies of tumours.

31p nuclear magnetic resonance (NMR) spectra have been obtained from animal and human tumours grown in laboratory rodents. The tumour cells are only slightly more acid than the surrounding muscle but they tend to have large Pi and sugar phosphate peaks, suggesting anoxia, and large but variable phosphodiester peaks. The results indicate that NMR will be an important tool for studying tumours in the laboratory, and for their diagnosis, assessment, and monitoring in clinical practice.

Animals↗

Hepatic metabolism by 31P NMR.

Hepatic metabolism in intact livers has been studied by 31P nuclear magnetic resonance (NMR) spectroscopy. 31P NMR spectroscopy of normal liver detects little ADP and much lower amounts of inorganic phosphate than are found by enzymatic or chemical analysis. Ischaemia of 30 min duration provokes a rapid fall in ATP to undetectable levels; reflow restores the ATP concentration to 70% of its former level. Intracellular pH changes are qualitatively similar. Fructose and glycerol both cause rapid falls in ATP and inorganic phosphate; these original concentrations are almost restored after 30 min in the case of fructose but not with glycerol where they remain depressed.

Adenosine Diphosphate↗

The purine nucleotide profile in mouse, chicken and human dystrophic muscle: an abnormal ratio of inosine plus adenine nucleotides to guanine nucleotides.

1. AMP, ADP, ATP, IMP, GDP, GTP and adenylosuccinate have been measured by high pressure liquid chromatography in three types of animal muscular dystrophy and in a human patient with Duchenne muscular dystrophy. 2. Abnormalities in nucleotide content varied from one dystrophy to another. 3. In each case, however, the ratio [total adenine nucleotide + IMP]/[total guanine nucleotides] was lower in dystrophic muscle, even when severely exercised or ischaemic muscles were used. 4. The practical advantages of this assay for diagnosis of muscular dystrophy are discussed.

Adenine Nucleotides↗

31P-NMR investigation of solid tumours in the living rat.

The 31P-NMR spectra of living tumours (Walker 256 carcinosarcomas) have been obtained using surface coils and found to be unlike those of normal tissues. Contrary to expectations, their intracellular pH (measured from the chemical shift of the inorganic phosphate peak) was only slightly more acid than that of normal rat muscle, and glucose infusion did not depress it. However, when deoxyglucose was infused, the tumour intracellular pH measured from the chemical shift of the deoxyglucose-6-phosphate peak was much lower (6.44 +/- 0.02) than that measured from the phosphate peak (7.14 +/- 0.01).

Animals↗

Alkalinization of phosphorylase kinase-deficient muscle during tetanic contraction.

The intracellular pH of resting and stimulated muscle was monitored by two independent methods: measurement of pH in iodoacetate-treated homogenates of freeze-clamped tissue and the absorbance at 550-443 nm of intracellular neutral red dye in vivo. During tetanic stimulation, muscle of phosphorylase kinase-deficient mice shows a transient alkalinization whereas muscle in normal mice becomes more acid under similar conditions. The alkalinization appears to be caused by abnormally rapid AMP deamination associated with adaptation to phosphorylase kinase deficiency.

Animals↗

Effects of fructose on the energy metabolism and acid-base status of the perfused starved-rat liver. A 31phosphorus nuclear magnetic resonance study.

Fructose metabolism has been studied with 31P n.m.r. in perfused livers from rats starved for 48h. The time course of changes in liver ATP, Pi and sugar phosphate (fructose l-phosphate) concentrations, and intracellular pH were followed in each perfusion after infusion of fructose to give an initial concentration of either 5mM or 10mM. Rapid falls in the concentrations of ATP and Pi and intracellular pH occurred after infusion of fructose, reaching a minimum after 4-5 min, which was lower in the 10mM group than in the 5mM group. These changes were accompanied by a rapid rise in fructose 1-phosphate, reaching a plateau also after 4-5 min. At both concentrations of fructose, after the early falls, some recovery of ATP, Pi and intracellular pH occurred; this was complete for Pi and intracellular pH in the 5mM-fructose experiments (within 12-30 min). Complete restoration of ATP to the pre-fructose value was not achieved in either the 5mM of 10mM groups. Measurements of the uptake of lactate by the liver indicated that the fall in intracellular pH was caused primarily by production of protons accompanying the formation of lactate from fructose with possibly a transient contribution generated during the rise in fructose 1-phosphate.

Animals↗

Metabolic adaptation in phosphorylase kinase deficiency. Changes in metabolite concentrations during tetanic stimulation of mouse leg muscles.

1. Glycogen, nucleotides and glycolytic intermediates and products were measured before and during tetanus in the hamstrings-muscle groups of normal (C3H) and phosphorylase kinase-deficient (ICR/IAn) mice. 2. Phosphorylase kinase-deficient muscles contained 3-4-fold more glycogen and sustained a larger (approx. 2-fold), more rapid (11 +/- 2 ng/s faster) and more prolonged glycogenolysis during 120s tetanus despite their lack of phosphorylase a. 3. No significant change in total adenine nucleotide contents occurred during tetanus in either strain, but there was a 60-100-fold rise in IMP concentration to approx. 2mM in both strains. The initial rate of IMP formation was 6-fold more rapid (112 nmol/s per g) in phosphorylase kinase-deficient muscle. 4. Adenylosuccinate content rose to 36 nmol/g in phosphorylase kinase-deficient muscle and to 9 nmol/g in normal muscle at 45s tetanus, but then fell. 5. In phosphorylase kinase-deficient muscle, glucose 6-phosphate, a powerful phosphorylase inhibitor, was 56% of that in normal muscle. 6. The mass-action ratio of the phosphoglucomutase-catalysed reaction [glucose 6-phosphate]/[glucose 1-phosphate] was markedly lower than Keq. (approx. 17) in relaxed muscle of both strains (approx. 5-7), but rose significantly during tetanus to the value for Keq. 7. The data for IMP satisfy the criteria put forward by Rahim, Perrett & Griffiths [(1976) FEBS Lett. 69, 203-206] for a nucleotide activator of phosphorylase b: it should be present at a higher concentration in phosphorylase kinase-deficient muscle, its concentration should rise during muscle work, and it should attain a concentration comparable with its activation constant for phosphorylase b.

Animals↗