Hsp90 Breaks the Deadlock of the Hsp70 Chaperone System

Publication date

2018-05-03

Authors

Morán Luengo, TaniaISNI 0000000419569897
Kityk, R.
Mayer, Matthias
Rüdiger, Stefan G.D.ISNI 0000000394040769

Editors

Advisors

Supervisors

Document Type

Article
Open Access logo

License

taverne

Abstract

Protein folding in the cell requires ATP-driven chaperone machines such as the conserved Hsp70 and Hsp90. It is enigmatic how these machines fold proteins. Here, we show that Hsp90 takes a key role in protein folding by breaking an Hsp70-inflicted folding block, empowering protein clients to fold on their own. At physiological concentrations, Hsp70 stalls productive folding by binding hydrophobic, core-forming segments. Hsp90 breaks this deadlock and restarts folding. Remarkably, neither Hsp70 nor Hsp90 alters the folding rate despite ensuring high folding yields. In fact, ATP-dependent chaperoning is restricted to the early folding phase. Thus, the Hsp70-Hsp90 cascade does not fold proteins, but instead prepares them for spontaneous, productive folding. This stop-start mechanism is conserved from bacteria to man, assigning also a general function to bacterial Hsp90, HtpG. We speculate that the decreasing hydrophobicity along the Hsp70-Hsp90 cascade may be crucial for enabling spontaneous folding.

Keywords

Protein Folding, Chaperones, Proteostasis, Hsp90, Hsp70, Luciferase, Folding, Hormone Receptor, Taverne

Citation

Morán Luengo, T, Kityk, R, Mayer, M & Rüdiger, S G D 2018, 'Hsp90 Breaks the Deadlock of the Hsp70 Chaperone System', Molecular Cell, vol. 70, no. 3, pp. 545-552.e9. https://doi.org/10.1016/j.molcel.2018.03.028