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June 17, 2009Proceedings of the National Academy of Sciences156 citationsOpen Access

Top-down high-resolution mass spectrometry of cardiac myosin binding protein C revealed that truncation alters protein phosphorylation state

YGYing GeIRInna N. RybakovaQXQingge Xu

Key Result

Truncations in recombinant cardiac myosin binding protein C dramatically altered its phosphorylation state compared to the full-length protein, as revealed by top-down high-resolution mass spectrometry.

Structured PICO

P
Population
Recombinant mouse cardiac myosin binding protein C (cMyBP-C) expressed in baculovirus (full-length and 3 truncated forms: C0-C1, C0-C4, and C0-C1)
I
Intervention
Top-down and middle-down high-resolution mass spectrometry (electron capture dissociation and collisionally activated dissociation)
C
Comparator
Comparison between full-length and truncated forms of cMyBP-C
O
Outcome
Identification of phosphorylation sites and characterization of phosphorylation statessurrogate

Truncations in recombinant cMyBP-C dramatically alter its phosphorylation state, indicating that truncated proteins may not accurately reflect the structure and function of the full-length protein in vitro.

Limitations

  • Difficulty in obtaining larger fragments that cover the middle region of large proteins due to the increasing complexity of the tertiary structure.
  • Recovery of peptides from limited proteolysis is typically unpredictable, yielding 40-90% sequence coverage.

Abstract

Cardiac myosin binding protein C (cMyBP-C), bound to the sarcomere's myosin thick filament, plays an important role in the regulation of muscle contraction. cMyBP-C is a large multidomain protein that interacts with myosin, titin, and possibly actin. Mutations in cMyBP-C are the most common known cause of heritable hypertrophic cardiomypathies. Phosphorylation of cMyBP-C plays an essential role in the normal cardiac function. cMyBP-C (142 kDa) has 81 serine and 73 threonine residues presenting a major challenge for unequivocal identification of specific phosphorylation sites. Top-down mass spectrometry, which directly analyzes intact proteins, is a powerful technique to universally observe and quantify protein posttranslational modifications without a priori knowledge. Here, we have extended top-down electron capture dissociation mass spectrometry to comprehensively characterize mouse cMyBP-C expressed in baculovirus. We have unambiguously identified all of the phosphorylation sites in the truncated (28-115 kDa) and full-length forms of cMyBP-C (142 kDa) and characterized the sequential phosphorylations, using a combination of top-down and middle-down (limited proteolysis) MS approach, which ensures full sequence coverage. Unit mass resolution and high mass accuracy (<5 ppm) have been achieved for a 115-kDa protein (the largest protein isotopically resolved to date). Remarkably, we discovered that truncations in recombinant proteins, even a seemingly minor one, can dramatically alter its phosphorylation state, which is significant because truncated recombinant proteins are routinely substituted for their full-length forms in crystal structure and functional studies. Our study provides direct evidence of alterations in the posttranslational state between the truncated and full-length recombinant proteins, which can lead to variations in structure and function.

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Cite This Study

Ge et al. (2009) studied this question. Truncation of recombinant cMyBP-C vs. Full-length recombinant cMyBP-C was evaluated on Protein phosphorylation state. Truncations in recombinant cardiac myosin binding protein C dramatically altered its phosphorylation state compared to the full-length protein, as revealed by top-down high-resolution mass spectrometry.

synapsesocial.com/papers/6a15cc9f814bf8ec9a4f0ea7https://doi.org/10.1073/pnas.0813369106
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