4.5 Article

Myeloperoxidase-induced fibrinogen unfolding and clotting

期刊

MICROSCOPY RESEARCH AND TECHNIQUE
卷 85, 期 7, 页码 2537-2548

出版社

WILEY
DOI: 10.1002/jemt.24107

关键词

atomic force microscopy; fibrinogen clotting; protein denaturation; protein materials; scanning electron microscopy; single-molecule analysis

资金

  1. Ministry of Education and Science of the Russian Federation, Increase Competitiveness Program of NUST MISIS
  2. Russian Science Foundation [17-75-30064]

向作者/读者索取更多资源

This study reports a new type of non-conventional fibrinogen clot formation mediated by myeloperoxidase, even at low concentrations. The researchers discovered that these clots have a different morphology compared to conventional fibrin clots and found that myeloperoxidase interacts directly with fibrinogen molecules, leading to the unfolding of the protein. The results provide new insights into fibrinogen clotting and open up possibilities for the development of fibrinogen-based biomaterials.
Due to its unique properties and high biomedical relevance fibrinogen is a promising protein for the development of various matrixes and scaffolds for biotechnological applications. Fibrinogen molecules may form extensive clots either upon specific cleavage by thrombin or in thrombin-free environment, for example, in the presence of different salts. Here, we report the novel type of non-conventional fibrinogen clot formation, which is mediated by myeloperoxidase and takes place even at low fibrinogen concentrations (<0.1 mg/ml). We have revealed fibrillar nature of myeloperoxidase-mediated fibrinogen clots, which differ morphologically from fibrin clots. We have shown that fibrinogen clotting is mediated by direct interaction of myeloperoxidase molecules with the outer globular regions of fibrinogen molecules followed by fibrinogen unfolding from its natural trinodular to a fibrillar structure. We have demonstrated a major role of the Debye screening effect in regulating of myeloperoxidase-induced fibrinogen clotting, which is facilitated by small ionic strength. While fibrinogen in an aqueous solution with myeloperoxidase undergoes changes, the enzymatic activity of myeloperoxidase is not inhibited in excess of fibrinogen. The obtained results open new insights into fibrinogen clotting, give new possibilities for the development of fibrinogen-based functional biomaterials, and provide the novel concepts of protein unfolding.

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