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1.
Nat Commun ; 13(1): 829, 2022 02 11.
Artículo en Inglés | MEDLINE | ID: mdl-35149672

RESUMEN

Advances in synthetic biology permit the genetic encoding of synthetic chemistries at monomeric precision, enabling the synthesis of programmable proteins with tunable properties. Bacterial pili serve as an attractive biomaterial for the development of engineered protein materials due to their ability to self-assemble into mechanically robust filaments. However, most biomaterials lack electronic functionality and atomic structures of putative conductive proteins are not known. Here, we engineer high electronic conductivity in pili produced by a genomically-recoded E. coli strain. Incorporation of tryptophan into pili increased conductivity of individual filaments >80-fold. Computationally-guided ordering of the pili into nanostructures increased conductivity 5-fold compared to unordered pili networks. Site-specific conjugation of pili with gold nanoparticles, facilitated by incorporating the nonstandard amino acid propargyloxy-phenylalanine, increased filament conductivity ~170-fold. This work demonstrates the sequence-defined production of highly-conductive protein nanowires and hybrid organic-inorganic biomaterials with genetically-programmable electronic functionalities not accessible in nature or through chemical-based synthesis.


Asunto(s)
Conductividad Eléctrica , Nanopartículas del Metal/química , Nanocables , Proteínas/metabolismo , Fenómenos Químicos , Escherichia coli/genética , Proteínas Fimbrias , Fimbrias Bacterianas/metabolismo , Oro/química , Nanoestructuras , Nanocables/química , Fenilalanina/metabolismo , Ingeniería de Proteínas , Triptófano/metabolismo
2.
Nature ; 597(7876): 430-434, 2021 09.
Artículo en Inglés | MEDLINE | ID: mdl-34471289

RESUMEN

Extracellular electron transfer by Geobacter species through surface appendages known as microbial nanowires1 is important in a range of globally important environmental phenomena2, as well as for applications in bio-remediation, bioenergy, biofuels and bioelectronics. Since 2005, these nanowires have been thought to be type 4 pili composed solely of the PilA-N protein1. However, previous structural analyses have demonstrated that, during extracellular electron transfer, cells do not produce pili but rather nanowires made up of the cytochromes OmcS2,3 and OmcZ4. Here we show that Geobacter sulfurreducens binds PilA-N to PilA-C to assemble heterodimeric pili, which remain periplasmic under nanowire-producing conditions that require extracellular electron transfer5. Cryo-electron microscopy revealed that C-terminal residues of PilA-N stabilize its copolymerization with PilA-C (to form PilA-N-C) through electrostatic and hydrophobic interactions that position PilA-C along the outer surface of the filament. PilA-N-C filaments lack π-stacking of aromatic side chains and show a conductivity that is 20,000-fold lower than that of OmcZ nanowires. In contrast with surface-displayed type 4 pili, PilA-N-C filaments show structure, function and localization akin to those of type 2 secretion pseudopili6. The secretion of OmcS and OmcZ nanowires is lost when pilA-N is deleted and restored when PilA-N-C filaments are reconstituted. The substitution of pilA-N with the type 4 pili of other microorganisms also causes a loss of secretion of OmcZ nanowires. As all major phyla of prokaryotes use systems similar to type 4 pili, this nanowire translocation machinery may have a widespread effect in identifying the evolution and prevalence of diverse electron-transferring microorganisms and in determining nanowire assembly architecture for designing synthetic protein nanowires.


Asunto(s)
Fimbrias Bacterianas/química , Fimbrias Bacterianas/metabolismo , Geobacter , Nanocables , Proteínas Bacterianas/química , Proteínas Bacterianas/metabolismo , Biopolímeros , Conductividad Eléctrica , Proteínas Fimbrias/química , Proteínas Fimbrias/metabolismo , Geobacter/citología , Geobacter/metabolismo , Multimerización de Proteína
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