Distinct structural changes in wild-type and amyloidogenic chicken cystatin caused by disruption of C95-C115

Xiaoying Chong1, Xian Lu1, Yu Wang1

  • 1a Research Center for Computer Simulating and Information Processing of Bio-macromolecules of Liaoning Province, School of Life Science , Liaoning University , Shenyang 110036 , China.

Insights

Disulfide bridges in cystatin C are crucial for protein stability and preventing amyloid formation. Disrupting these bridges enhances amyloidogenic properties, potentially explaining different mechanisms in cystatin C amyloid angiopathy.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Neuroscience

Background:

  • Human cystatin C amyloid angiopathy (HCCAA) involves amyloid deposition in blood vessels, leading to stroke.
  • Mutations in cystatin C increase its amyloidogenic potential, causing severe cerebral hemorrhage.
  • Wild-type cystatin C contributes to amyloid deposits in elderly individuals.

Purpose of the Study:

  • To investigate the role of disulfide bridge formation in chicken cystatin stability.
  • To assess how disulfide bridges influence the propensity for amyloid formation.
  • To understand the structural impact of disulfide bridges on protein folding transitions relevant to amyloidogenesis.

Main Methods:

  • Molecular dynamics simulations were employed to study chicken cystatin.
  • The critical role of the Cys95-Cys115 disulfide bridge in human cystatin stability was analyzed.
  • In silico studies were combined with previous experimental results on Eps1, a PDI family chaperone.

Main Results:

  • Disulfide bridge formation between Cys95 and Cys115 is critical for human cystatin stability.
  • This disulfide bridge influences protein regions involved in amyloid fibril formation.
  • Disrupting the Cys95-Cys115 disulfide bridge significantly enhances cystatin's amyloidogenic properties.

Conclusions:

  • Correct disulfide bridge formation stabilizes cystatin in its native conformation, inhibiting amyloid formation.
  • Disruption of the Cys95-Cys115 disulfide bridge enhances amyloidogenic properties.
  • Age-related HCCAA may have a distinct pathogenic mechanism compared to early-onset cystatin-related CAA, possibly involving chaperone interactions.

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