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Toxic Misfolded Transthyretin Oligomers with Different Molecular Conformations Formed through Distinct
Anvesh K R Dasari1, Sujung Yi1, Matthew F Coats1
1Department of Chemistry, East Carolina University, Greenville, North Carolina 27858, United States.
Abstract:
Protein aggregation is initiated by structural changes from native polypeptides to cytotoxic oligomers, which form cross-β structured amyloid. Identification and characterization of oligomeric intermediates are critically important for understanding not only the molecular mechanism of aggregation but also the cytotoxic nature of amyloid oligomers. Preparation of misfolded oligomers for structural characterization is, however, challenging because of their transient, heterogeneous nature. Here, we report two distinct misfolded transthyretin (TTR) oligomers formed through different oligomerization pathways. A pathogenic TTR variant with a strong aggregation propensity (L55P) was used to prepare misfolded oligomers at physiological pH. Our mechanistic studies showed that the full-length TTR initially forms small oligomers, which self-assemble into short protofibrils at later stages. Enzymatic cleavage of the CD loop was also used to induce the formation of N-terminally truncated oligomers, which was detected in ex vivo cardiac TTR aggregates extracted from the tissues of patients. Structural characterization of the oligomers using solid-state nuclear magnetic resonance and circular dichroism revealed that the two TTR misfolded oligomers have distinct molecular conformations. In addition, the proteolytically cleaved TTR oligomers exhibit a higher surface hydrophobicity, suggesting the presence of distinct oligomerization pathways for TTR oligomer formation. Cytotoxicity assays also revealed that the cytotoxicity of cleaved oligomers is stronger than that of the full-length TTR oligomers, indicating that hydrophobicity might be an important property of toxic oligomers. These comparative biophysical analyses suggest that the toxic cleaved TTR oligomers formed through a different misfoling pathway may adopt distinct structural features that produce higher surface hydrophobicity, leading to the stronger cytotoxic activities.
Insights
Researchers identified two distinct misfolded transthyretin (TTR) oligomers with different structures and toxicities. These findings shed light on the molecular mechanisms of amyloid formation and TTR-related diseases.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Protein aggregation into amyloid structures is linked to cytotoxicity.
- Oligomeric intermediates are crucial for understanding aggregation mechanisms and toxicity.
- Characterizing transient and heterogeneous oligomers is challenging.
Purpose of the Study:
- To prepare and structurally characterize distinct misfolded transthyretin (TTR) oligomers.
- To investigate the relationship between TTR oligomer structure, pathway, and cytotoxicity.
- To understand the molecular basis of TTR-related amyloid diseases.
Main Methods:
- Preparation of misfolded TTR oligomers from a pathogenic L55P variant.
- Induction of N-terminally truncated TTR oligomers via enzymatic cleavage.
- Structural characterization using solid-state nuclear magnetic resonance (ssNMR) and circular dichroism (CD).
- Assessment of oligomer surface hydrophobicity and cytotoxicity.
Main Results:
- Two distinct misfolded TTR oligomers were generated through different pathways.
- The oligomers exhibited unique molecular conformations as determined by ssNMR and CD.
- Proteolytically cleaved TTR oligomers showed increased surface hydrophobicity.
- Cleaved TTR oligomers demonstrated enhanced cytotoxicity compared to full-length TTR oligomers.
Conclusions:
- Distinct oligomerization pathways lead to TTR oligomers with different structural features.
- Increased surface hydrophobicity in cleaved TTR oligomers correlates with higher cytotoxicity.
- These findings provide insights into the structural determinants of TTR-mediated amyloid toxicity.
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