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Updated: Jun 23, 2026

A Sensitive and Specific Quantitation Method for Determination of Serum Cardiac Myosin Binding Protein-C by Electrochemiluminescence Immunoassay
Published on: August 8, 2013
Targeting C-reactive protein for the treatment of cardiovascular disease
Mark B Pepys1, Gideon M Hirschfield, Glenys A Tennent
1Centre for Amyloidosis and Acute Phase Proteins, Department of Medicine, Royal Free and University College Medical School, University College London, Rowland Hill Street, London NW3 2PF, UK. m.pepys@medsch.ucl.ac.uk
Insights
A new small molecule inhibitor, 1,6-bis(phosphocholine)-hexane, effectively blocks C-reactive protein (CRP) and reduces heart attack-related tissue damage in a rat model. This offers a promising new therapeutic strategy for cardioprotection and potentially neuroprotection.
Area of Science:
- Biochemistry
- Immunology
- Cardiovascular Medicine
Background:
- Complement-mediated inflammation worsens tissue injury in heart attacks and strokes, leading to significant mortality and long-term disability.
- Human C-reactive protein (CRP) activates complement, exacerbating infarct size in preclinical models, highlighting an unmet need for targeted therapies.
Purpose of the Study:
- To design and synthesize a specific small-molecule inhibitor of CRP.
- To evaluate the efficacy of this inhibitor in preventing CRP-induced exacerbation of myocardial infarction in a rat model.
Main Methods:
- Design and synthesis of 1,6-bis(phosphocholine)-hexane, a specific small-molecule inhibitor of CRP.
- Administration of the inhibitor to rats subjected to acute myocardial infarction and human CRP injection.
- Assessment of infarct size and cardiac dysfunction.
Main Results:
- 1,6-bis(phosphocholine)-hexane effectively binds to pentameric CRP, crosslinking and blocking its ligand-binding site.
- Administration of the inhibitor abrogated the infarct size increase and cardiac dysfunction caused by human CRP in a rat model of acute myocardial infarction.
Conclusions:
- Therapeutic inhibition of CRP using 1,6-bis(phosphocholine)-hexane is a promising strategy for cardioprotection in acute myocardial infarction.
- This approach may also offer neuroprotection in stroke and has potential applications in other inflammatory conditions involving CRP-mediated tissue damage.
Abstract:
Complement-mediated inflammation exacerbates the tissue injury of ischaemic necrosis in heart attacks and strokes, the most common causes of death in developed countries. Large infarct size increases immediate morbidity and mortality and, in survivors of the acute event, larger non-functional scars adversely affect long-term prognosis. There is thus an important unmet medical need for new cardioprotective and neuroprotective treatments. We have previously shown that human C-reactive protein (CRP), the classical acute-phase protein that binds to ligands exposed in damaged tissue and then activates complement, increases myocardial and cerebral infarct size in rats subjected to coronary or cerebral artery ligation, respectively. Rat CRP does not activate rat complement, whereas human CRP activates both rat and human complement. Administration of human CRP to rats is thus an excellent model for the actions of endogenous human CRP. Here we report the design, synthesis and efficacy of 1,6-bis(phosphocholine)-hexane as a specific small-molecule inhibitor of CRP. Five molecules of this palindromic compound are bound by two pentameric CRP molecules, crosslinking and occluding the ligand-binding B-face of CRP and blocking its functions. Administration of 1,6-bis(phosphocholine)-hexane to rats undergoing acute myocardial infarction abrogated the increase in infarct size and cardiac dysfunction produced by injection of human CRP. Therapeutic inhibition of CRP is thus a promising new approach to cardioprotection in acute myocardial infarction, and may also provide neuroprotection in stroke. Potential wider applications include other inflammatory, infective and tissue-damaging conditions characterized by increased CRP production, in which binding of CRP to exposed ligands in damaged cells may lead to complement-mediated exacerbation of tissue injury.
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