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1.
Proc Natl Acad Sci U S A ; 120(46): e2306129120, 2023 Nov 14.
Artigo em Inglês | MEDLINE | ID: mdl-37939083

RESUMO

Controlling the biodistribution of protein- and nanoparticle-based therapeutic formulations remains challenging. In vivo library selection is an effective method for identifying constructs that exhibit desired distribution behavior; library variants can be selected based on their ability to localize to the tissue or compartment of interest despite complex physiological challenges. Here, we describe further development of an in vivo library selection platform based on self-assembling protein nanoparticles encapsulating their own mRNA genomes (synthetic nucleocapsids or synNCs). We tested two distinct libraries: a low-diversity library composed of synNC surface mutations (45 variants) and a high-diversity library composed of synNCs displaying miniproteins with binder-like properties (6.2 million variants). While we did not identify any variants from the low-diversity surface library that yielded therapeutically relevant changes in biodistribution, the high-diversity miniprotein display library yielded variants that shifted accumulation toward lungs or muscles in just two rounds of in vivo selection. Our approach should contribute to achieving specific tissue homing patterns and identifying targeting ligands for diseases of interest.


Assuntos
Biblioteca de Peptídeos , Proteínas , Distribuição Tecidual , Nucleocapsídeo , Mutação
2.
Nature ; 552(7685): 415-420, 2017 12 21.
Artigo em Inglês | MEDLINE | ID: mdl-29236688

RESUMO

The challenges of evolution in a complex biochemical environment, coupling genotype to phenotype and protecting the genetic material, are solved elegantly in biological systems by the encapsulation of nucleic acids. In the simplest examples, viruses use capsids to surround their genomes. Although these naturally occurring systems have been modified to change their tropism and to display proteins or peptides, billions of years of evolution have favoured efficiency at the expense of modularity, making viral capsids difficult to engineer. Synthetic systems composed of non-viral proteins could provide a 'blank slate' to evolve desired properties for drug delivery and other biomedical applications, while avoiding the safety risks and engineering challenges associated with viruses. Here we create synthetic nucleocapsids, which are computationally designed icosahedral protein assemblies with positively charged inner surfaces that can package their own full-length mRNA genomes. We explore the ability of these nucleocapsids to evolve virus-like properties by generating diversified populations using Escherichia coli as an expression host. Several generations of evolution resulted in markedly improved genome packaging (more than 133-fold), stability in blood (from less than 3.7% to 71% of packaged RNA protected after 6 hours of treatment), and in vivo circulation time (from less than 5 minutes to approximately 4.5 hours). The resulting synthetic nucleocapsids package one full-length RNA genome for every 11 icosahedral assemblies, similar to the best recombinant adeno-associated virus vectors. Our results show that there are simple evolutionary paths through which protein assemblies can acquire virus-like genome packaging and protection. Considerable effort has been directed at 'top-down' modification of viruses to be safe and effective for drug delivery and vaccine applications; the ability to design synthetic nanomaterials computationally and to optimize them through evolution now enables a complementary 'bottom-up' approach with considerable advantages in programmability and control.


Assuntos
Bioengenharia , Evolução Molecular Direcionada , Genoma Viral , Nucleocapsídeo/genética , Nucleocapsídeo/metabolismo , RNA Viral/metabolismo , Montagem de Vírus , Animais , Sistemas de Liberação de Medicamentos , Escherichia coli/genética , Escherichia coli/metabolismo , Feminino , Produtos do Gene tat/genética , Produtos do Gene tat/metabolismo , Aptidão Genética , Terapia Genética , Vírus da Imunodeficiência Bovina/química , Vírus da Imunodeficiência Bovina/genética , Camundongos , Modelos Moleculares , Nucleocapsídeo/química , RNA Mensageiro/metabolismo , Seleção Genética
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