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March 13, 2026European Biophysics Journal0 citationsOpen Access

Charged membrane interfaces reshape the nucleation landscape of RIPK3 amyloid variants

FEFátima C. Escobedo-GonzálezAGAndrea GelardoGTGustavo A. Titaux-Delgado

Key Points

  • The aim is to explore how charged lipid environments influence the nucleation of RIPK3 amyloid variants.
  • Utilized Thioflavin-T fluorescence assays to monitor amyloid formation.
  • Employed NMR spectroscopy to analyze molecular interactions.
  • Compared wild-type RIPK3 and core-disrupted variant (VQVG→AAAA) under varying conditions.
  • Negatively charged lipid interfaces significantly promote amyloid formation in the core-disrupted RIPK3 variant.
  • Amyloidogenic potential in disrupted variants can be unlocked by specific environmental conditions.
  • Two dimensions of amyloidogenesis were identified: sequence-encoded properties and environmental catalysis.

Abstract

Amyloid assembly is governed by a balance between intrinsic sequence determinants and environmental cues that modulate nucleation. The RIP homotypic interaction motif (RHIM) of receptor-interacting protein kinase 3 (RIPK3) provides a tractable model to dissect these principles. In solution, amyloid formation strictly requires the conserved VQVG RHIM core tetrad; a deliberately core-disrupted variant (VQVG→AAAA) fails to assemble under aggregation permissive conditions. Here, we use Thioflavin-T fluorescence assays and NMR spectroscopy to show that negatively charged lipidic interfaces unlock a latent amyloidogenic potential in this mutant. These results delineate two separable dimensions of amyloidogenesis, namely a sequence-encoded propensity and an environmental component that can catalyze nucleation by templating molecular proximity and orientation.

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Cite This Study

Escobedo-González et al. (2026) studied this question.

synapsesocial.com/papers/69b3acd302a1e69014cced53https://doi.org/10.1007/s00249-026-01833-8
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