Search PubMed⌕ Search

Biomedical subjects

R Périchon

Publications and source records attributed to R Périchon.

5 recordsLinked to original sources

Peroxisomal disease cell lines with cellular plasmalogen deficiency have impaired muscarinic cholinergic signal transduction activity and amyloid precursor protein secretion.

We tested whether alterations in membrane lipid composition associated with peroxisomal diseases affect muscarinic cholinergic signal transduction activity and amyloid precursor protein (APP) secretion in cultured human skin fibroblasts and Chinese hamster ovary (CHO) mutants. We found that in cell lines from patients with peroxisomal disorders where plasmalogen levels were low, the low-Km GTPase activity was not induced by carbachol, and APP secretion was reduced. This effect on signal transduction activity was not associated with decreased levels of the M1-muscarinic cholinergic receptor or its associated heterotrimeric G-protein. Specifically, this decrease was associated with a plasmalogen deficiency since a CHO cell line with only a deficit in plasmalogens was as severely affected as were generalized peroxisomal disorder cell lines. Thus, plasmalogens appear to be implicated in muscarinic cholinergic signal transduction and secretion of APP. These results provide new insights about the pathophysiology of peroxisomal diseases and may be relevant to Alzheimer's disease where reduced plasmalogen levels have been reported.

Amyloid beta-Protein Precursor↗

The role of peroxisomes in aging.

Reactive oxygen species and alterations in membrane lipid homeostasis are thought to be important events in aging process and aging-related degenerative diseases. The peroxisome is a small cellular organelle involved in both oxygen and lipid metabolism, and defects in peroxisomal function are associated with major, and often fatal, changes at the neurological level during human development. Recent reports of aging-related changes in peroxisomal function raised the hypothesis that peroxisomes may also have a significant role in the aging process and aging-related degenerative diseases. This review presents the current data on changes in peroxisomal function during aging and discusses the implications of these changes for health.

Aging↗

Aging-related decrease in liver peroxisomal fatty acid oxidation in control and clofibrate-treated mice. A biochemical study and mechanistic approach.

Membrane fatty acid composition affects membrane structure and function. Alterations in membrane composition have been reported in old animals and it is now hypothesized that these alterations may contribute to the onset of age-related diseases. Previously, we proposed that peroxisomes might also be involved in these aging-related membrane alterations. In order to extend our previous work, we have assayed acyl-CoA oxidase activity and cyanide-insensitive fatty acid oxidation activity for both arachidonic 20:4(n-6) and docosahexaenoic 22:6(n-3) acids, catalase and urate oxidase activities, microsomal cytochrome P450 content and cytochrome P4504A1 laurate hydroxylase activity in the liver of young and old mice fed either a control or a clofibrate-supplemented diet. Our results suggest a progressive general decrease in peroxisomal function during aging, including a decrease in the fatty acid oxidation pathway that takes place via a specific decrease in acyl-CoA oxidase activity. The aging-related decrease in peroxisomal function is linked to a concomitant decrease in cytochrome P4504A laurate hydroxylase activity in control animals but not in clofibratetreated mice. This suggests aging impairs a mechanism in peroxisome proliferation that is subsequent to the cytochrome P4504A step. Implications of the aging-related peroxisomal fatty acid oxidation decrease on health through possible alterations in membrane composition and function and very long chain fatty acid accumulation are discussed.

Age Factors↗

Peroxisomal beta-oxidation activity and catalase activity during development and aging in mouse liver.

Liver peroxisomal beta-oxidation activity on stearate, oleate, linoleate and alpha-linolenate was investigated as a function of age in two mouse strains. Each fatty acid showed a similar beta-oxidation activity pattern with age characterized by a rapid increase (200%) from day 2 to 20 followed by a dramatic weaning-related decrease (70%) from day 20 to 22. There was a new increase (260%) from day 22 to 75, then a plateau up to day 300 days, and finally an age-related decrease (70%) from day 300 to 540. Oleic, linoleic and alpha-linolenic acids were respectively 5-, 7.5- and 9-fold more degraded than stearic acid. Catalase specific activity showed the same age-related pattern as fatty acid beta-oxidation. Both mouse strains showed the age-related decreases. The longer-lived strain exhibited higher activity for both peroxisomal beta-oxidation and catalase and the rate of decrease of these two activities during aging was the same for both strains. The catalase/alpha-linolenic acid beta-oxidation ratio was constant during adulthood and aging. These results suggest that peroxisomal beta-oxidation and catalase activities are closely related throughout and implications for long-chain and very long-chain fatty acid metabolism, maintenance of membrane fatty acid composition and anti-oxidant status during aging are discussed.

Age Factors↗

Liver peroxisomal fatty acid oxidizing system during aging in control and clofibrate-treated mice.

We have previously described an aging-related decrease in the peroxisomal polyunsaturated fatty acid oxidizing system in mouse liver. In order to determine whether peroxisome synthesis is involved in this phenomenon, we focused our work on different peroxisomal enzyme activities during aging in the liver of mice fed for 5 days with either a control or a clofibrate supplemented diet which enhanced peroxisome biogenesis. Liver peroxisomal acyl-CoA oxidase (AOX), catalase (CAT) and urate oxidase (UOX) activities per gram of liver were determined. In control mice, UOX activity was not affected by aging whereas CAT and AOX activities were significantly decreased. At day 300 the clofibrate treatment increased all activities although UOX was not significantly increased. Thereafter, enzyme activities after clofibrate treatment were severely depressed at day 680. CAT and UOX were not induced in very old clofibrate-treated animals, whereas AOX was induced 7 fold in such mice compared to an 11 fold induction in day 300 animals. The present results suggest that: 1- Aging decreased the peroxisomal polyunsaturated fatty acid oxidizing system. 2- This took place via a specific decrease in AOX activity. 3- Since clofibrate treatment triggers the peroxisomal proliferation, the aging-related decrease in peroxisomal activities might be due to an alteration in peroxisome synthesis.

Acyl-CoA Oxidase↗