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Published on: July 14, 2016
On the mechanism of homocysteine pathophysiology and pathogenesis: a unifying hypothesis
1Department of Basic Pharmaceutical Sciences, College of Pharmacy, University of South Carolina, Columbia, SC 29208, USA. BTZhu@cop.sc.edu
Insights
High homocysteine levels (hyperhomocysteinemia) may damage blood vessels by inhibiting crucial methylation processes, leading to cardiovascular disease. This mechanism also suggests links to neurodegenerative disorders and hormonal cancers.
Area of Science:
- Biochemistry
- Cardiovascular Science
- Neuroscience
Background:
- Hyperhomocysteinemia is an established risk factor for cardiovascular diseases.
- The precise mechanisms underlying its pathogenicity are still under investigation.
Purpose of the Study:
- To propose a unifying hypothesis for the pathogenic effects of hyperhomocysteinemia.
- To elucidate the role of S-adenosyl-L-homocysteine accumulation in hyperhomocysteinemia-induced damage.
Main Methods:
- The study proposes a mechanistic hypothesis based on existing experimental findings.
- It focuses on the inhibition of catechol-O-methyltransferase (COMT)-mediated methylation.
Main Results:
- Hyperhomocysteinemia leads to S-adenosyl-L-homocysteine accumulation, inhibiting COMT.
- This inhibition elevates catecholamine levels, causing cardiovascular over-stimulation and endothelial damage.
- Potential links to neurodegenerative diseases and hormonal cancers are suggested.
Conclusions:
- Hyperhomocysteinemia's vascular toxicity is explained by impaired catecholamine methylation and subsequent oxidative stress.
- The hypothesis aligns with the protective effects of folate and B vitamins.
- Further research is needed to validate its role in neurological and hormonal conditions.
Abstract:
Studies have shown that hyperhomocysteinemia is an important and independent risk factor for a variety of human cardiovascular diseases. In this paper, a unifying hypothesis is proposed which suggests that hyperhomocysteinemia may exert its pathogenic effects largely through metabolic accumulation of S-adenosyl-L-homocysteine, a strong noncompetitive inhibitor of the catechol-O-methyltransferase (COMT)-mediated methylation metabolism of various catechol substrates (such as catecholamines and catechol estrogens). In the case of endogenous catecholamines in peripheral tissues, inhibition of their methylation by S-adenosyl-L-homocysteine will result in elevation of blood or tissue levels of catecholamines, and consequently, over-stimulation of the cardiovascular system's functions. Moreover, because the vasculature is constantly exposed to high levels of endogenous catecholamines (due to high levels of circulating neurohormone epinephrine plus rich innervation with sympathetic nerve terminals), vascular endothelial cells would incur chronic cumulative damage caused by the large amounts of the oxidative products (catechol quinones/semiquinones and oxyradicals) generated from endogenous catecholamines. This mechanistic explanation for the vascular toxicity of hyperhomocysteinemia is supported by many experimental findings, and it also fully agrees with the known protective effects of folate, vitamins B6 and B12 in hyperhomocysteinemic patients. In addition, based on the predictable effects of hyperhomocysteinemia on the methylation of catecholamines in the central nervous system as well as on the methylation of catechol estrogens in estrogen target organs, it is also suggested that hyperhomocysteinemia is an important risk factor for the development of neurodegerative disorders (Parkinson's and Alzheimer's diseases) and estrogen-induced hormonal cancers. More studies are warranted to test these intriguing ideas.
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