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February 6, 2026Nature4 citationsOpen Access

Single-molecule dynamics of the TRiC chaperonin system in vivo

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RLRongqin LiNDNiko DalheimerMMMartin B. D. Müller

Key Points

  • The research aims to investigate the functional dynamics of the TRiC chaperonin system in vivo, focusing on its interactions with newly synthesized proteins.
  • Developed single-particle tracking to observe TRiC–PFD interactions in human cells.
  • Monitored binding events of chaperones with nascent polypeptides.
  • Assessed frequency and lifetime of interactions during protein chain elongation.
  • TRiC and PFD engaged nascent polypeptides repeatedly in brief probing events lasting around one second.
  • Interactions increased in frequency and lifetime during chain elongation.
  • TRiC interactions were prolonged with a folding-defective actin mutant until targeted for degradation.

Abstract

Abstract The essential chaperonin T-complex protein ring complex (TRiC) (also known as chaperonin containing TCP-1 (CCT)) mediates protein folding in cooperation with the co-chaperone prefoldin (PFD) 1–5 . In vitro experiments have shown that the cylindrical TRiC complex facilitates folding through ATP-regulated client protein encapsulation 6–9 . However, the functional dynamics of the chaperonin system in vivo remain unexplored. Here we developed single-particle tracking in human cells to monitor the interactions of TRiC–PFD with newly synthesized proteins. Both chaperones engaged nascent polypeptides repeatedly in brief probing events typically lasting around one second, with PFD recruiting TRiC. As shown with the chaperonin client actin 8 , the co-translational interactions of PFD and TRiC increased in frequency and lifetime during chain elongation. Close to translation termination, PFD bound for several seconds, facilitating TRiC recruitment for post-translational folding involving multiple reaction cycles of around 2.5 s. Notably, the lifetimes of TRiC interactions with a folding-defective actin mutant were markedly prolonged, indicating that client conformational properties modulate TRiC function. Mutant actin continued cycling on TRiC until it was targeted for degradation. TRiC often remained confined near its client protein between successive binding cycles, suggesting that the chaperonin machinery operates within a localized ‘protective zone’ in which free diffusion is restricted. Together, these findings offer detailed insight into the single-molecule dynamics and supramolecular organization of the chaperonin system in the cellular environment.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698585cb8f7c464f2300977fhttps://doi.org/10.1038/s41586-025-10073-3
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