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Published on: May 21, 2018
Myelin basic protein undergoes a broader range of modifications in mammals than in lower vertebrates
Chunchao Zhang1, Angela K Walker, Robert Zand
1Department of Computational Medicine and Bioinformatics, University of Michigan, Ann Arbor, Michigan 48109, United States.
Abstract:
Myelin basic protein (MBP) is an important component of the myelin sheath surrounding neurons, and it is directly affected in demyelinating diseases. MBP contains a relatively large number of post-translational modifications (PTMs), which have been reported to play a role in multiple sclerosis, while MBPs from lower vertebrates have been reported to be incapable of inducing multiple sclerosis or allergic encephalitis. This study reveals the extent of differences in PTM patterns for mammalian and nonmammalian MBPs. This included intact mass and de novo sequence analysis of approximately 85% of rattlesnake MBP, the first reptile MBP to be characterized, and of bovine MBP. We identified 12 PTMs at 11 sites in the five bovine MBP charge components, which include both previously reported and novel modifications. The most notable modification is an acetylation of lysine 121. Other modifications found in bovine MBP include N-terminal acetylation in components C1, C2, and C3; oxidation of methionine 19 in all five components; all charge isomers having both a mono- and dimethylated (symmetric) arginine at position 106; deimination in arginines 23 and 47 found only in component C8b; deimination of arginine 96 and deamidation in glutamine 102 found in components C2, C3, C8a, and C8b; phosphorylation in threonine 97 restricted to charge components C2 and C3; deimination in arginine 161 only found in component C3; deamidation of glutamine 120 was only observed in C3. All four deiminated arginines and one acetylated lysine were first experimentally revealed in this study for bovine MBP. Mascot database searching combined with de novo sequence analysis of rattlesnake MBP provided more than 85% sequence coverage. A few PTMs were also revealed in rattlesnake MBP: mono- and dimethylated Arg, protein N-terminal acetylation, and deiminated Arg. Overall, snake MBP was found to undergo less modification than bovine MBP on the basis of the mass heterogeneity of the intact protein, the bottom-up structure analysis, and the limited complexity of rattlesnake MBP chromatography. The combined data from this study and information from previous studies extend the known MBP PTMs, and PTMs unique to higher vertebrates are proposed.
Insights
This study compares post-translational modifications (PTMs) in bovine and rattlesnake myelin basic protein (MBP). Mammalian MBP exhibits more diverse PTMs, including novel modifications, compared to reptilian MBP.
Area of Science:
- Proteomics
- Neuroscience
- Biochemistry
Background:
- Myelin basic protein (MBP) is crucial for myelin sheath integrity and is implicated in demyelinating diseases.
- MBP PTMs are linked to multiple sclerosis, with variations observed across vertebrate species.
Purpose of the Study:
- To investigate and compare post-translational modification (PTM) patterns in mammalian (bovine) and nonmammalian (rattlesnake) MBP.
- To identify novel PTMs in bovine MBP and characterize PTMs in the first reported reptile MBP.
Main Methods:
- Intact mass analysis and de novo sequence analysis of bovine and rattlesnake MBP.
- Utilized Mascot database searching for sequence coverage and PTM identification.
Main Results:
- Identified 12 PTMs at 11 sites in bovine MBP, including novel modifications like lysine acetylation at position 121.
- Characterized over 85% of rattlesnake MBP, revealing fewer PTMs compared to bovine MBP, such as N-terminal acetylation and methylated/deiminated arginine.
- Observed significant differences in PTM profiles, with bovine MBP showing greater complexity and unique modifications.
Conclusions:
- Mammalian MBP possesses a more extensive and diverse range of PTMs than reptilian MBP.
- The findings suggest that certain PTMs unique to higher vertebrates may contribute to their distinct roles in neurological functions or disease pathologies.
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