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1.
Nat Struct Mol Biol ; 29(12): 1266-1276, 2022 12.
Artículo en Inglés | MEDLINE | ID: mdl-36522429

RESUMEN

The de novo design of three protein chains that associate to form a heterotrimer (but not any of the possible two-chain heterodimers) and that can drive the assembly of higher-order branching structures is an important challenge for protein design. We designed helical heterotrimers with specificity conferred by buried hydrogen bond networks and large aromatic residues to enhance shape complementary packing. We obtained ten designs for which all three chains cooperatively assembled into heterotrimers with few or no other species present. Crystal structures of a helical bundle heterotrimer and extended versions, with helical repeat proteins fused to individual subunits, showed all three chains assembling in the designed orientation. We used these heterotrimers as building blocks to construct larger cyclic oligomers, which were structurally validated by electron microscopy. Our three-way junction designs provide new routes to complex protein nanostructures and enable the scaffolding of three distinct ligands for modulation of cell signaling.


Asunto(s)
Proteínas , Modelos Moleculares , Proteínas/química
2.
Nature ; 565(7737): 106-111, 2019 01.
Artículo en Inglés | MEDLINE | ID: mdl-30568301

RESUMEN

Specificity of interactions between two DNA strands, or between protein and DNA, is often achieved by varying bases or side chains coming off the DNA or protein backbone-for example, the bases participating in Watson-Crick pairing in the double helix, or the side chains contacting DNA in TALEN-DNA complexes. By contrast, specificity of protein-protein interactions usually involves backbone shape complementarity1, which is less modular and hence harder to generalize. Coiled-coil heterodimers are an exception, but the restricted geometry of interactions across the heterodimer interface (primarily at the heptad a and d positions2) limits the number of orthogonal pairs that can be created simply by varying side-chain interactions3,4. Here we show that protein-protein interaction specificity can be achieved using extensive and modular side-chain hydrogen-bond networks. We used the Crick generating equations5 to produce millions of four-helix backbones with varying degrees of supercoiling around a central axis, identified those accommodating extensive hydrogen-bond networks, and used Rosetta to connect pairs of helices with short loops and to optimize the remainder of the sequence. Of 97 such designs expressed in Escherichia coli, 65 formed constitutive heterodimers, and the crystal structures of four designs were in close agreement with the computational models and confirmed the designed hydrogen-bond networks. In cells, six heterodimers were fully orthogonal, and in vitro-following mixing of 32 chains from 16 heterodimer designs, denaturation in 5 M guanidine hydrochloride and reannealing-almost all of the interactions observed by native mass spectrometry were between the designed cognate pairs. The ability to design orthogonal protein heterodimers should enable sophisticated protein-based control logic for synthetic biology, and illustrates that nature has not fully explored the possibilities for programmable biomolecular interaction modalities.


Asunto(s)
Simulación por Computador , Ingeniería de Proteínas , Dominios y Motivos de Interacción de Proteínas , Multimerización de Proteína , Proteínas/química , Proteínas/metabolismo , ADN/química , ADN/metabolismo , Escherichia coli/genética , Escherichia coli/metabolismo , Guanidina/farmacología , Enlace de Hidrógeno , Modelos Moleculares , Unión Proteica , Desnaturalización Proteica/efectos de los fármacos , Estructura Secundaria de Proteína , Proteínas/genética
3.
J Chem Theory Comput ; 11(8): 3714-28, 2015 Aug 11.
Artículo en Inglés | MEDLINE | ID: mdl-26574454

RESUMEN

The Generalized Born (GB) implicit solvent model has undergone significant improvements in accuracy for modeling of proteins and small molecules. However, GB still remains a less widely explored option for nucleic acid simulations, in part because fast GB models are often unable to maintain stable nucleic acid structures or they introduce structural bias in proteins, leading to difficulty in application of GB models in simulations of protein-nucleic acid complexes. Recently, GB-neck2 was developed to improve the behavior of protein simulations. In an effort to create a more accurate model for nucleic acids, a similar procedure to the development of GB-neck2 is described here for nucleic acids. The resulting parameter set significantly reduces absolute and relative energy error relative to Poisson-Boltzmann for both nucleic acids and nucleic acid-protein complexes, when compared to its predecessor GB-neck model. This improvement in solvation energy calculation translates to increased structural stability for simulations of DNA and RNA duplexes, quadruplexes, and protein-nucleic acid complexes. The GB-neck2 model also enables successful folding of small DNA and RNA hairpins to near native structures as determined from comparison with experiment. The functional form and all required parameters are provided here and also implemented in the AMBER software.


Asunto(s)
Ácidos Nucleicos/química , Proteínas/química , Solventes/química , Secuencia de Bases , ADN/química , ADN/metabolismo , Enlace de Hidrógeno , Simulación de Dinámica Molecular , Conformación de Ácido Nucleico , Ácidos Nucleicos/metabolismo , Unión Proteica , Estructura Terciaria de Proteína , Proteínas/metabolismo , ARN/química , ARN/metabolismo , Termodinámica
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