Effect of Thyroid Function on LDL Oxidation
- 1 May 1998
- journal article
- research article
- Published by Wolters Kluwer Health in Arteriosclerosis, Thrombosis, and Vascular Biology
- Vol. 18 (5), 732-737
- https://doi.org/10.1161/01.atv.18.5.732
Abstract
—In this study, the effect of different levels of thyroid hormone and metabolic activity on low density lipoprotein (LDL) oxidation was investigated. Thus, in 16 patients with hyperthyroidism, 16 with hypothyroidism, and 16 age- and sex-matched healthy normolipidemic control subjects, the native LDL content in lipid peroxides, vitamin E, β-carotene, and lycopene, as well as the susceptibility of these particles to undergo lipid peroxidation, was assessed. Hyperthyroidism was associated with significantly higher lipid peroxidation, as characterized by a higher native LDL content in lipid peroxides, a lower lag phase, and a higher oxidation rate than in the other two groups. This elevated lipid peroxidation was associated with a lower LDL antioxidant concentration. Interestingly, hypothyroid patients showed an intermediate behavior. In fact, in hypothyroidism, LDL oxidation was significantly lower than in hyperthyroidism but higher than in the control group. Hypothyroidism was also characterized by the highest β-carotene LDL content, whereas vitamin E was significantly lower than in control subjects. In hyperthyroidism but not in the other two groups, LDL oxidation was strongly influenced by free thyroxine blood content. In fact in this group, the native LDL lipid peroxide content and the lag phase were directly and indirectly, respectively, related to free thyroxine blood levels. On the contrary, in hypothyroidism LDL oxidation was strongly and significantly related to serum lipids. In conclusion, both hypothyroidism and hyperthyroidism are characterized by higher levels of LDL oxidation when compared with normolipidemic control subjects. In hyperthyroid patients, the increased lipid peroxidation was strictly related to free thyroxine levels, whereas in hypothyroidism it was strongly influenced by serum lipids.Keywords
This publication has 32 references indexed in Scilit:
- Oxidative structural modifications of low density lipoprotein in homozygous familial hypercholesterolemiaAtherosclerosis, 1995
- Supplementation with β-carotene in vivo and in vitro does not inhibit low density lipoprotein oxidationAtherosclerosis, 1995
- Vitamins E, C and lipid peroxidation in plasma and arterial tissue of smokers and non-smokersAtherosclerosis, 1995
- Control of superoxide dismutase, catalase and glutathione peroxidase activities in rat lymphoid organs by thyroid hormonesJournal of Endocrinology, 1994
- Oxidation resistance, oxidation rate, and extent of oxidation of human low-density lipoprotein depend on the ration of oleic acid content to linoleic acid content studies in vitamin E deficient subjectsFree Radical Biology & Medicine, 1993
- Characterization of products formed during the autoxidation of β-caroteneFree Radical Biology & Medicine, 1991
- Role of oxidatively modified LDL in atherosclerosisFree Radical Biology & Medicine, 1990
- Beyond CholesterolNew England Journal of Medicine, 1989
- Hypothyroidism protects against free radical damage in ischemic acute renal failureKidney International, 1986
- Contribution of carotenoids to the optical activity of human serum low-density lipoproteinBiochemistry, 1974