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1.
J Am Chem Soc ; 141(20): 8239-8243, 2019 05 22.
Artículo en Inglés | MEDLINE | ID: mdl-31050413

RESUMEN

Rhodopsin, composed of opsin and isomeric retinal, acts as the primary photoreceptor by converting light into electric signals. Inspired by rhodopsin, we have fabricated a light-regulated ionic gate on the basis of the design of a graphene oxide (GO)-biomimetic DNA-nanochannel architecture. In this design, photoswitchable azobenzene (Azo)-DNA is introduced to the surface of porous anodic alumina (PAA) membrane. With modulation of the interaction between the GO blocker and Azo-DNA via flexibly regulating trans and cis states of Azo under the irradiation of visible and ultraviolet light, alternatively, the ionic gate is switched between ON and OFF states. This newly constructed ionic gate can possess high efficiency for the control of ion transport because of the high blocking property of GO and the rather tiny path within the barrier layer which are both first employed to fabricate ionic gate. We anticipate that this rhodopsin-like ionic gate may provide a new model and method for the investigation of ion channel, ion function, and ion quantity. In addition, because of the advantages of simple fabrication, good biocompatibility, and universality, this bioinspired system may have potential applications as optical sensors, in photoelectric transformation, and in controllable drug delivery.


Asunto(s)
Materiales Biomiméticos/química , ADN/química , Grafito/química , Transporte Iónico/efectos de los fármacos , Óxido de Aluminio/química , Compuestos Azo/química , Compuestos Azo/efectos de la radiación , Materiales Biomiméticos/efectos de la radiación , ADN/efectos de la radiación , Técnicas Electroquímicas , Grafito/efectos de la radiación , Transporte Iónico/efectos de la radiación , Membranas Artificiales , Rodopsina/química , Estereoisomerismo , Rayos Ultravioleta
2.
Chem Commun (Camb) ; 54(81): 11391-11394, 2018 Oct 09.
Artículo en Inglés | MEDLINE | ID: mdl-30182124

RESUMEN

By employing DNA nanoflower blooming in the nanochannels of porous anodic alumina (PAA), a nanochannel platform for microRNA (miRNA) detection has been proposed. Significant steric and electrostatic hindrance of the miRNA-initiated DNA-nanoflower growth may also amplify the signal readout for miRNA detection to give excellent sensitivity, selectivity and reproducibility.


Asunto(s)
Óxido de Aluminio/química , Técnicas Biosensibles/métodos , ADN/química , MicroARNs/sangre , Nanoestructuras/química , ADN/síntesis química , Técnicas Electroquímicas/métodos , Electrodos , Humanos , Límite de Detección , Porosidad , Reproducibilidad de los Resultados , Electricidad Estática
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