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Methylation of phospholipids in microsomes of the rat aorta
Abstract:
The methylation of phospholipids by S-adenosyl-L-methionine was characterized in microsomes prepared from strips of rat aorta. In the presence of 0.5 microM S-adenosyl-L-methionine, endogenous phosphatidylethanolamine was methylated to form three products: phosphatidyl-N-monomethylethanolamine, phosphatidyl-N,N-dimethylethanolamine and phosphatidylcholine. In the presence of 150 microM S-adenosyl-L-methionine the methylation activity increased more than 50-fold and the principal radioactive product was phosphatidylcholine. Optimal activity was at pH 9 and no magnesium requirement was detected. Exogenous phosphatidylethanolamine, phosphatidyl-N-monomethylethanolamine and phosphatidyl-N,N-dimethylethanolamine served as substrates for the enzyme. The methylation of exogenous phosphatidyl-N,N-dimethylethanolamine proceeded at a slower rate. Incubation of trypsin with the aorta microsomes reduced the enzymatic activity and reduced the relative yield of phosphatidyl-N-monomethylethanolamine. Phospholipase C degraded the methylated phospholipids, but phosphatidyl-N,N-dimethylethanolamine appeared to be less accessible to the phospholipase. The phospholipid methylation activity was inhibited by the addition of S-adenosyl-L-homocysteine or by L-homocysteinethiolactone. When intact strips of rat aorta were incubated with L-[methyl-3H]methionine, [3H]methyl groups were incorporated into phospholipids. This incorporation was inhibited when L-homocysteinethiolactone was added to the incubation. Polarized fluorescence of diphenylhexatriene in aorta microsomes was measured to determine the apparent membrane fluidity. When intact strips of aorta were incubated with methionine or with L-homocysteinethiolactone, methionine enhanced and L-homocysteinethiolactone decreased apparent fluidity of the microsomal membranes. Phospholipid methylation activity was examined in aorta microsomes prepared from genetically spontaneous hypertensive SHR strain rats. Phospholipid methylation activity was substantially greater in the SHR aorta microsomes than in microsomes prepared from Wistar-Kyoto WKY control strain aorta. Membrane fluidity was greater in the SHR aorta microsomes than in the WKY aorta microsomes. The hypothesis that phospholipid methylation activity influences fluidity of membranes and the possible involvement of methylated phospholipids in aorta membrane functions are discussed.
Insights
Rat aorta microsomes methylate phospholipids, with activity increasing significantly at higher S-adenosyl-L-methionine concentrations. This phospholipid methylation impacts membrane fluidity and is elevated in spontaneously hypertensive rats.
Area of Science:
- Biochemistry
- Cell Biology
- Cardiovascular Science
Background:
- Phospholipid methylation is a key cellular process involving S-adenosyl-L-methionine.
- Aorta membrane function and fluidity are critical for cardiovascular health.
- Alterations in phospholipid metabolism may be linked to hypertension.
Purpose of the Study:
- To characterize phospholipid methylation in rat aorta microsomes.
- To investigate the relationship between phospholipid methylation and membrane fluidity.
- To compare phospholipid methylation activity and membrane fluidity in hypertensive and normotensive rats.
Main Methods:
- Enzymatic assays using S-adenosyl-L-methionine and various phospholipid substrates.
- Inhibition studies with S-adenosyl-L-homocysteine and L-homocysteinethiolactone.
- Measurement of membrane fluidity using diphenylhexatriene polarization.
- Comparison of microsomes from spontaneously hypertensive rats (SHR) and Wistar-Kyoto (WKY) rats.
Main Results:
- Phospholipid methylation activity in rat aorta microsomes was confirmed, with optimal activity at pH 9.
- Higher concentrations of S-adenosyl-L-methionine significantly increased methylation, primarily forming phosphatidylcholine.
- Phospholipid methylation activity was substantially greater in SHR aorta microsomes compared to WKY, and SHR membranes exhibited greater fluidity.
Conclusions:
- Phospholipid methylation is an active process in rat aorta, influenced by substrate concentration and pH.
- This methylation activity appears to influence the fluidity of microsomal membranes.
- Elevated phospholipid methylation and increased membrane fluidity in SHR rats suggest a potential role in hypertension-related vascular changes.