BIO bragg gratings on microfibers for label-free biosensing

[EN] Discovering nanoscale phenomena to sense biorecognition events introduces new perspectives to exploit nano science and nanotechnology for bioanalytical purposes. Here we present Bio Bragg Gratings (BBGs), a novel biosensing approach that consists of diffractive structures of protein bioreceptor...

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Detalles Bibliográficos
Autores: Juste-Dolz, Augusto Miguel|||0000-0003-4889-6419, Avella-Oliver, Miquel|||0000-0002-7293-6989, Pastor Abellán, Daniel|||0000-0002-5297-3918, Maquieira, Angel|||0000-0003-4641-4957, Delgado-Pinar, Martina, Fernández-Sánchez, María Estrella, Andrés, Miguel V.
Tipo de recurso: artículo
Fecha de publicación:2021
País:España
Institución:Universitat Politècnica de València (UPV)
Repositorio:RiuNet. Repositorio Institucional de la Universitat Politécnica de Valéncia
Idioma:inglés
OAI Identifier:oai:riunet.upv.es:10251/183163
Acceso en línea:https://riunet.upv.es/handle/10251/183163
Access Level:acceso abierto
Palabra clave:Biosensor
Diffraction
Optical microfiber
Immunoassay
Non-specific binding
Label-free
QUIMICA INORGANICA
QUIMICA ANALITICA
TEORIA DE LA SEÑAL Y COMUNICACIONES
Descripción
Sumario:[EN] Discovering nanoscale phenomena to sense biorecognition events introduces new perspectives to exploit nano science and nanotechnology for bioanalytical purposes. Here we present Bio Bragg Gratings (BBGs), a novel biosensing approach that consists of diffractive structures of protein bioreceptors patterned on the surface of optical waveguides, and tailored to transduce the magnitude of biorecognition assays into the intensity of single peaks in the reflection spectrum. This work addresses the design, fabrication, and optimization of this system by both theoretical and experimental studies to explore the fundamental physicochemical parameters involved. Functional biomolecular gratings are fabricated by microcontact printing on the surface of tapered optical microfibers, and their structural features were characterized. The transduction principle is experimentally demonstrated, and its quantitative bioanalytical prospects are assessed in a representative immunoassay, based on patterned protein probes and selective IgG targets, in label-free conditions. This biosensing system involves appealing perspectives to avoid unwanted signal contributions from non-specific binding, herein investigated in human serum samples. The work also proves how the optical response of the system can be easily tuned, and it provides insights into the relevance of this feature to conceive multiplexed BBG systems capable to perform multiple label-free biorecognition assays in a single device.