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1.
J Biol Chem ; 298(7): 102101, 2022 07.
Artigo em Inglês | MEDLINE | ID: mdl-35667441

RESUMO

The heat shock protein 90 (Hsp90) is a molecular chaperone central to client protein folding and maturation in eukaryotic cells. During its chaperone cycle, Hsp90 undergoes ATPase-coupled large-scale conformational changes between open and closed states, where the N-terminal and middle domains of the protein form a compact dimerized conformation. However, the molecular principles of the switching motion between the open and closed states remain poorly understood. Here we show by integrating atomistic and coarse-grained molecular simulations with small-angle X-ray scattering experiments and NMR spectroscopy data that Hsp90 exhibits rich conformational dynamics modulated by the charged linker, which connects the N-terminal with the middle domain of the protein. We show that the dissociation of these domains is crucial for the conformational flexibility of the open state, with the separation distance controlled by a ß-sheet motif next to the linker region. Taken together, our results suggest that the conformational ensemble of Hsp90 comprises highly extended states, which could be functionally crucial for client processing.


Assuntos
Proteínas de Choque Térmico HSP90 , Chaperonas Moleculares , Proteínas de Choque Térmico HSP90/metabolismo , Modelos Moleculares , Chaperonas Moleculares/metabolismo , Simulação de Dinâmica Molecular , Conformação Proteica , Dobramento de Proteína
2.
Nat Commun ; 12(1): 1895, 2021 03 25.
Artigo em Inglês | MEDLINE | ID: mdl-33767131

RESUMO

Soluble proteins are universally packed with a hydrophobic core and a polar surface that drive the protein folding process. Yet charged networks within the central protein core are often indispensable for the biological function. Here, we show that natural buried ion-pairs are stabilised by amphiphilic residues that electrostatically shield the charged motif from its surroundings to gain structural stability. To explore this effect, we build artificial proteins with buried ion-pairs by combining directed computational design and biophysical experiments. Our findings illustrate how perturbation in charged networks can introduce structural rearrangements to compensate for desolvation effects. We validate the physical principles by resolving high-resolution atomic structures of the artificial proteins that are resistant towards unfolding at extreme temperatures and harsh chemical conditions. Our findings provide a molecular understanding of functional charged networks and how point mutations may alter the protein's conformational landscape.


Assuntos
Conformação Proteica , Dobramento de Proteína , Proteínas/metabolismo , Sequência de Aminoácidos , Biologia Computacional , Simulação por Computador , Interações Hidrofóbicas e Hidrofílicas , Simulação de Dinâmica Molecular , Termodinâmica
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