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April 23, 2026Cell Stress and Chaperones0 citationsOpen Access

Nucleotide-Dependent Domain Interactions of Aha1-Type Co-chaperones with Hsp90 Reveal Evolutionarily Conserved Binding Determinants

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DADesmond Prah AmoahRBRakesh BhatMTMalak Trad

Key Points

  • The aim is to explore how Aha1-type co-chaperones interact with Hsp90 under different nucleotide states.
  • Isolated and full-length Aha1 were analyzed for binding to apo and nucleotide-bound Hsp90.
  • Yeast-human Aha1 chimeras were created to study evolutionary conservation of binding sites.
  • Linker regions were modified to investigate their role in binding dynamics.
  • Full-length Aha1 binds Hsp90 in both apo and nucleotide-bound states, while the isolated N-domain only binds the apo state.
  • The addition of a linker region to Aha1 N domain restores its ability to bind the closed state.
  • Chimeric analysis shows the C-terminal domain is essential for stable binding across species despite sequence differences.

Abstract

Hsp90 is a dimeric molecular chaperone essential for the maturation, activation, stabilization and folding of numerous clients required for cellular functions. Hsp90 progresses through a dynamic ATP-driven conformational cycle that is precisely regulated by accessory proteins known as co-chaperones. Here, we show that the isolated N-domain of Aha1 (Aha1N156) binds the apo state of Hsp90 but fails to associate with the closed, nucleotide-bound state. In contrast, the full-length Aha1 binds Hsp90 in both conformational states, suggesting a key role for the Aha1 C domain in binding to the nucleotide-bound, closed state of Hsp90. Surprisingly, the Aha1 paralogue Hch1, which corresponds to the Aha1 N domain, was capable of binding to Hsp90 in both the apo and nucleotide-bound states. Interestingly, the addition of a 14 amino acid residues section of the linker to the Aha1 N domain restores closed-state binding, indicating an unexpected role for the linker in stabilizing nucleotide-dependent interactions. Analysis of yeast-human Aha1 chimeras further demonstrates that the C-terminal domain of Aha-type co-chaperones serves as an evolutionarily conserved anchoring module, enabling stable engagement of the ATP-bound state despite significant sequence divergence. This work allows us to propose a model in which the Aha1 C domain allows for the repositioning of the Aha1 N domain that occurs during the transition from the apo to the ATP-bound state of Hsp90.

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Cite This Study

Amoah et al. (2026) studied this question.

synapsesocial.com/papers/69e9b80e85696592c86eb7a7https://doi.org/10.1016/j.cstres.2026.100179
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