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1.
Artículo en Inglés | MEDLINE | ID: mdl-29696134

RESUMEN

The common small animal disease models for Zika virus (ZIKV) are mice lacking the interferon responses, but infection of interferon receptor α/ß knock out (IFNAR-/-) mice is not uniformly lethal particularly in older animals. Here we sought to advance this model in regard to lethality for future countermeasure efficacy testing against more recent ZIKV strains from the Asian lineage, preferably the American sublineage. We first infected IFNAR-/- mice subcutaneously with the contemporary ZIKV-Paraiba strain resulting in predominantly neurological disease with ~50% lethality. Infection with ZIKV-Paraiba by different routes established a uniformly lethal model only in young mice (4-week old) upon intraperitoneal infection. However, intraperitoneal inoculation of ZIKV-French Polynesia resulted in uniform lethality in older IFNAR-/- mice (10-12-weeks old). In conclusion, we have established uniformly lethal mouse disease models for efficacy testing of antivirals and vaccines against recent ZIKV strains representing the Asian lineage.


Asunto(s)
Modelos Animales de Enfermedad , Receptor de Interferón alfa y beta/genética , Infección por el Virus Zika/mortalidad , Infección por el Virus Zika/patología , Virus Zika/aislamiento & purificación , Aedes , Factores de Edad , Animales , Línea Celular , Chlorocebus aethiops , Femenino , Masculino , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Células Vero , Virus Zika/patogenicidad , Infección por el Virus Zika/virología
2.
PLoS One ; 10(2): e0118322, 2015.
Artículo en Inglés | MEDLINE | ID: mdl-25714374

RESUMEN

Current use of microbes for metabolic engineering suffers from loss of metabolic output due to natural selection. Rather than combat the evolution of bacterial populations, we chose to embrace what makes biological engineering unique among engineering fields - evolving materials. We harnessed bacteria to compute solutions to the biological problem of metabolic pathway optimization. Our approach is called Programmed Evolution to capture two concepts. First, a population of cells is programmed with DNA code to enable it to compute solutions to a chosen optimization problem. As analog computers, bacteria process known and unknown inputs and direct the output of their biochemical hardware. Second, the system employs the evolution of bacteria toward an optimal metabolic solution by imposing fitness defined by metabolic output. The current study is a proof-of-concept for Programmed Evolution applied to the optimization of a metabolic pathway for the conversion of caffeine to theophylline in E. coli. Introduced genotype variations included strength of the promoter and ribosome binding site, plasmid copy number, and chaperone proteins. We constructed 24 strains using all combinations of the genetic variables. We used a theophylline riboswitch and a tetracycline resistance gene to link theophylline production to fitness. After subjecting the mixed population to selection, we measured a change in the distribution of genotypes in the population and an increased conversion of caffeine to theophylline among the most fit strains, demonstrating Programmed Evolution. Programmed Evolution inverts the standard paradigm in metabolic engineering by harnessing evolution instead of fighting it. Our modular system enables researchers to program bacteria and use evolution to determine the combination of genetic control elements that optimizes catabolic or anabolic output and to maintain it in a population of cells. Programmed Evolution could be used for applications in energy, pharmaceuticals, chemical commodities, biomining, and bioremediation.


Asunto(s)
Bacterias/metabolismo , Ingeniería Metabólica , Redes y Vías Metabólicas , Bacterias/genética , Evolución Biológica , Técnicas Biosensibles , Dosificación de Gen , Ingeniería Genética , Aptitud Genética , Variación Genética , Modelos Biológicos , Plásmidos/genética
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