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1.
Biophys J ; 94(8): 2987-93, 2008 Apr 15.
Artigo em Inglês | MEDLINE | ID: mdl-18192377

RESUMO

The GroEL chaperonin has the ability to behave as an unfoldase, repeatedly denaturing proteins upon binding, which in turn can free them from kinetic traps and increase their folding rates. The complex formed by GroEL+GroES+ATP can also act as an infinite dilution cage, enclosing proteins within a protective container where they can fold without danger of aggregation. Controversy remains over which of these two properties is more critical to the GroEL/ES chaperonin's function. We probe the importance of the unfoldase nature of GroEL under conditions where aggregation is the predominant protein degradation pathway. We consider the effect of a hypothetical mutation to GroEL which increases the cycle frequency of GroEL/ES by increasing the rate of hydrolysis of GroEL-bound ATP. Using a simple kinetic model, we show that this modified chaperonin would be self-defeating: any potential reduction in folding time would be negated by an increase in time spent in the bulk, causing an increase in aggregation and a net decrease in protein folding yields.


Assuntos
Chaperonina 10/química , Chaperonina 10/ultraestrutura , Chaperonina 60/química , Chaperonina 60/ultraestrutura , Modelos Químicos , Modelos Moleculares , Sítios de Ligação , Chaperoninas/química , Chaperoninas/ultraestrutura , Dimerização , Complexos Multiproteicos/química , Complexos Multiproteicos/ultraestrutura , Ligação Proteica , Conformação Proteica , Dobramento de Proteína
2.
J Mol Biol ; 363(5): 945-57, 2006 Nov 10.
Artigo em Inglês | MEDLINE | ID: mdl-16987526

RESUMO

A variety of small cageless chaperones have been discovered that can assist protein folding without the consumption of ATP. These include mini-chaperones (catalytically active fragments of larger chaperones), as well as small proteins such as alpha-casein and detergents acting as "artificial chaperones." These chaperones all possess exposed hydrophobic patches on their surface that act as recognition sites for misfolded proteins. They lack the complexity of chaperonins (that encapsulate proteins in their inner rings) and their study can offer insight into the minimal requirements for chaperone function. We use molecular dynamics simulations to investigate how a cageless chaperone, modeled as a sphere of tunable hydrophobicity, can assist folding of a substrate protein. We find that under steady-state (non-stress) conditions, cageless chaperones that bind to a single substrate protein increase folding yields by reducing the time the substrate spends in an aggregation-prone state in a dual manner: (a) by competing for aggregation-prone hydrophobic sites on the surface of a protein, hence reducing the time the protein spends unprotected in the bulk and (b) by accelerating folding rates of the protein. In both cases, the chaperone must bind to and hold the protein loosely enough to allow the protein to change its conformation and fold while bound. Loose binding may enable small cageless chaperones to help proteins fold and avoid aggregation under steady-state conditions, even at low concentrations, without the consumption of ATP.


Assuntos
Chaperonas Moleculares/química , Dobramento de Proteína , Simulação por Computador , Interações Hidrofóbicas e Hidrofílicas , Cinética , Modelos Moleculares , Ligação Proteica , Termodinâmica
3.
Proc Natl Acad Sci U S A ; 101(36): 13192-7, 2004 Sep 07.
Artigo em Inglês | MEDLINE | ID: mdl-15331776

RESUMO

Recent experiments suggest that the folding of certain proteins can take place entirely within a chaperonin-like cavity. These substrate proteins experience folding rate enhancements without undergoing multiple rounds of ATP-induced binding and release from the chaperonin. Rather, they undergo only a single binding event, followed by sequestration into the chaperonin cage. The present work uses molecular dynamics simulations to investigate the folding of a highly frustrated protein within this chaperonin cavity. The chaperonin interior is modeled by a sphere with a lining of tunable degree of hydrophobicity. We demonstrate that a moderately hydrophobic environment, similar to the interior of the GroEL cavity upon complexion with ATP and GroES, is sufficient to accelerate the folding of a frustrated protein by more than an order of magnitude. Our simulations support a mechanism by which the moderately hydrophobic chaperonin environment provides an alternate pathway to the native state through a transiently bound intermediate state.


Assuntos
Chaperoninas/química , Dobramento de Proteína , Interações Hidrofóbicas e Hidrofílicas , Processos Estocásticos , Termodinâmica
4.
Pac Symp Biocomput ; : 230-41, 2000.
Artigo em Inglês | MEDLINE | ID: mdl-10902172

RESUMO

We have developed new computational methods for displaying and analyzing members of protein superfamilies. These methods (MinRMS, AlignPlot and MSFviewer) integrate sequence and structural information and are implemented as separate but cooperating programs to our Chimera molecular modeling system. Integration of multiple sequence alignment information and three-dimensional structural representations enable researchers to generate hypotheses about the sequence-structure relationship. Structural superpositions can be generated and easily tuned to identify similarities around important characteristics such as active sites or ligand binding sites. Information related to the release of Chimera, MinRMS, AlignPlot and MSFviewer can be obtained at http:¿www.cgl.ucsf.edu/chimera.


Assuntos
Proteínas/química , Alinhamento de Sequência/métodos , Análise de Sequência/métodos , Software , Sequência de Aminoácidos , Gráficos por Computador , Creatina Quinase/química , Bases de Dados Factuais , Glutamato-Amônia Ligase/química , Modelos Moleculares , Dados de Sequência Molecular , Conformação Proteica , Alinhamento de Sequência/estatística & dados numéricos , Análise de Sequência/estatística & dados numéricos
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