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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.
Abstract:
Human cystatin C (HCC) amyloid angiopathy (HCCAA) is characterized by tissue deposition of amyloid fibrils in blood vessels, which can lead to recurrent hemorrhagic stroke. Wild-type HCC forms part of the amyloid deposits in brain arteries of elderly people with amyloid angiopathy. A point mutation causing a glutamine to a leucine substitution at residue 68 in the HCC polypeptide chain greatly increases the amyloidogenic propensity of HCC and causes a more severe cerebral hemorrhage and premature death in young adults. In this study, we used molecular dynamics simulations to assess the importance of disulfide bridge formation upon the stability of chicken cystatin and how this may influence the propensity for amyloid formation. We found that disulfide bridge formation between Cys95 and Cys115 in human cystatin played a critical role in overall protein stability. Importantly, Cys95-Cys115 influenced cystatin structure in regions of the protein that play key roles in the protein-folding transitions that occur, which enable amyloid fibril formation. We hypothesized that correct disulfide bridge formation is a critical step in stabilizing cystatin toward its native conformation. Disrupting Cys95-Cys115 disulfide bridge formation within cystatin appears to significantly enhance the amyloidogenic properties of this protein. In addition, by combining in silico studies with our previous experimental results on Eps1, a molecular chaperone of the PDI family, we proposed that age-related HCCAA, may possess a different pathogenic mechanism compared with its amyloidogenic counterpart, the early onset amyloidogenic cystatin-related CAA.
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