4.7 Article

Myosin Binding Protein-C Forms Amyloid-Like Aggregates In Vitro

期刊

出版社

MDPI
DOI: 10.3390/ijms22020731

关键词

muscle proteins; MyBP-C; amyloid; amyloid-like aggregation; protein aggregation; structural analysis; SAXS; CD; X-ray diffraction; DLS

资金

  1. RFBR [18-015-00268]
  2. RSF [19-74-10051]
  3. Russian Science Foundation [19-74-10051] Funding Source: Russian Science Foundation

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The research investigated the in vitro aggregation and amyloid properties of sMyBP-C, showing rapid formation of large aggregates and the formation of sMyBP-C oligomers consisting of 7-10 monomers. The results suggest a high aggregability of sMyBP-C in vitro and indicate the unlikeliness of pathological amyloid formation in vivo.
This work investigated in vitro aggregation and amyloid properties of skeletal myosin binding protein-C (sMyBP-C) interacting in vivo with proteins of thick and thin filaments in the sarcomeric A-disc. Dynamic light scattering (DLS) and transmission electron microscopy (TEM) found a rapid (5-10 min) formation of large (>2 mu m) aggregates. sMyBP-C oligomers formed both at the initial 5-10 min and after 16 h of aggregation. Small angle X-ray scattering (SAXS) and DLS revealed sMyBP-C oligomers to consist of 7-10 monomers. TEM and atomic force microscopy (AFM) showed sMyBP-C to form amorphous aggregates (and, to a lesser degree, fibrillar structures) exhibiting no toxicity on cell culture. X-ray diffraction of sMyBP-C aggregates registered reflections attributed to a cross-beta quaternary structure. Circular dichroism (CD) showed the formation of the amyloid-like structure to occur without changes in the sMyBP-C secondary structure. The obtained results indicating a high in vitro aggregability of sMyBP-C are, apparently, a consequence of structural features of the domain organization of proteins of this family. Formation of pathological amyloid or amyloid-like sMyBP-C aggregates in vivo is little probable due to amino-acid sequence low identity (<26%), alternating ordered/disordered regions in the protein molecule, and S-S bonds providing for general stability.

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