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Abnormal membrane protein methylation and merocyanine 540 fluorescence in sickle erythrocyte membranes
Abstract:
Sickle cell erythrocytes exhibit reduced carboxyl methylation of membrane proteins compared to normal erythrocytes. This altered methylation in sickle membrane proteins is also observable when extracted membranes, both intact and alkali treated, were used as substrates for the homologous protein methylase II (S-adenosylmethionine:protein-carboxyl O-methyltransferase, EC. 2.1.1.24). However, when glycophorin A, one of the major methyl acceptors in both membranes, was extracted by lithium diiodosalicylate and used as the methyl acceptor, the proteins from both membranes were methylated equally, suggesting an involvement of membrane structure in membrane-bound protein methylation. Merocyanine 540 (MC-540), a fluorescent probe, was used to determine if the membranes differed in organization. Incubation of both normal and sickle erythrocytes membranes with MC-540 produced a marked increase in extrinsic fluorescence, reflecting a relatively nonpolar environment for the dye bound to the membranes. The fluorescence from sickle cell ghosts was only 87% as intense as that from normal ghosts, while the actual amount of MC-540 associated with sickle cell membranes was only 62% of normal. These data suggest that differences exist in the distribution of surface charges on these plasma membranes. These results are consistent with the hypothesis that abnormal levels of membrane protein methylation observed in sickle erythrocytes may be a result of abnormal membrane organization characteristic to sickle cell anemia.
Insights
Sickle cell erythrocytes show decreased protein methylation due to altered membrane organization. This impacts cell function in sickle cell anemia patients.
Area of Science:
- Biochemistry
- Cell Biology
- Hematology
Background:
- Sickle cell erythrocytes display altered membrane protein methylation compared to normal cells.
- The enzyme S-adenosylmethionine:protein-carboxyl O-methyltransferase (EC 2.1.1.24) is involved in this process.
Purpose of the Study:
- To investigate the role of membrane structure in the altered protein methylation observed in sickle cell erythrocytes.
- To explore differences in membrane organization between normal and sickle cell erythrocytes.
Main Methods:
- Assessing protein methylase II activity using intact and treated erythrocyte membranes.
- Extracting glycophorin A to evaluate methylation independent of membrane structure.
- Utilizing the fluorescent probe Merocyanine 540 (MC-540) to assess membrane organization and surface charge distribution.
Main Results:
- While extracted glycophorin A showed equal methylation, intact sickle cell membranes exhibited reduced methylation, indicating structural involvement.
- MC-540 fluorescence intensity was lower in sickle cell membranes (87% of normal), with less dye association (62% of normal).
- These findings suggest differences in surface charge distribution and membrane organization in sickle erythrocytes.
Conclusions:
- Abnormal membrane organization in sickle erythrocytes likely contributes to the reduced membrane protein methylation.
- Altered membrane structure and protein methylation may be key factors in the pathophysiology of sickle cell anemia.