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1.
Anim. Reprod. (Online) ; 20(2): e20230058, 2023. ilus
Artículo en Inglés | VETINDEX | ID: biblio-1444318

RESUMEN

Traditional methods of gamete handling, fertilization, and embryo culture often face limitations in efficiency, consistency, and the ability to closely mimic in vivo conditions. This review explores the opportunities presented by microfluidic and 3D culture systems in overcoming these challenges and enhancing in vitro embryo production. We discuss the basic principles of microfluidics, emphasizing their inherent advantages such as precise control of fluid flow, reduced reagent consumption, and high-throughput capabilities. Furthermore, we delve into microfluidic devices designed for gamete manipulation, in vitro fertilization, and embryo culture, highlighting innovations such as droplet-based microfluidics and on-chip monitoring. Next, we explore the integration of 3D culture systems, including the use of biomimetic scaffolds and organ-on-a-chip platforms, with a particular focus on the oviduct-on-a-chip. Finally, we discuss the potential of these advanced systems to improve embryo production outcomes and advance our understanding of early embryo development. By leveraging the unique capabilities of microfluidics and 3D culture systems, we foresee significant advancements in the efficiency, effectiveness, and clinical success of in vitro embryo production.(AU)


Asunto(s)
Animales , Microfluídica/tendencias , Técnicas de Cultivo Tridimensional de Células/veterinaria , Técnicas In Vitro/veterinaria , Biotecnología , Desarrollo Embrionario
2.
Sensors (Basel) ; 20(7)2020 Mar 31.
Artículo en Inglés | MEDLINE | ID: mdl-32244343

RESUMEN

Point-of-care (PoC) diagnostics is promising for early detection of a number of diseases, including cancer, diabetes, and cardiovascular diseases, in addition to serving for monitoring health conditions. To be efficient and cost-effective, portable PoC devices are made with microfluidic technologies, with which laboratory analysis can be made with small-volume samples. Recent years have witnessed considerable progress in this area with "epidermal electronics", including miniaturized wearable diagnosis devices. These wearable devices allow for continuous real-time transmission of biological data to the Internet for further processing and transformation into clinical knowledge. Other approaches include bluetooth and WiFi technology for data transmission from portable (non-wearable) diagnosis devices to cellphones or computers, and then to the Internet for communication with centralized healthcare structures. There are, however, considerable challenges to be faced before PoC devices become routine in the clinical practice. For instance, the implementation of this technology requires integration of detection components with other fluid regulatory elements at the microscale, where fluid-flow properties become increasingly controlled by viscous forces rather than inertial forces. Another challenge is to develop new materials for environmentally friendly, cheap, and portable microfluidic devices. In this review paper, we first revisit the progress made in the last few years and discuss trends and strategies for the fabrication of microfluidic devices. Then, we discuss the challenges in lab-on-a-chip biosensing devices, including colorimetric sensors coupled to smartphones, plasmonic sensors, and electronic tongues. The latter ones use statistical and big data analysis for proper classification. The increasing use of big data and artificial intelligence methods is then commented upon in the context of wearable and handled biosensing platforms for the Internet of things and futuristic healthcare systems.


Asunto(s)
Técnicas Biosensibles , Microfluídica/tendencias , Pruebas en el Punto de Atención/tendencias , Telemedicina/tendencias , Inteligencia Artificial , Electrónica , Humanos , Sistemas de Atención de Punto/tendencias , Teléfono Inteligente , Dispositivos Electrónicos Vestibles/tendencias
3.
Bioanalysis ; 6(1): 89-106, 2014 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-24341497

RESUMEN

Paper has become increasingly recognized as a very interesting substrate for the construction of microfluidic devices, with potential application in a variety of areas, including health diagnosis, environmental monitoring, immunoassays and food safety. The aim of this review is to present a short history of analytical systems constructed from paper, summarize the main advantages and disadvantages of fabrication techniques, exploit alternative methods of detection such as colorimetric, electrochemical, photoelectrochemical, chemiluminescence and electrochemiluminescence, as well as to take a closer look at the novel achievements in the field of bioanalysis published during the last 2 years. Finally, the future trends for production of such devices are discussed.


Asunto(s)
Monitoreo del Ambiente/instrumentación , Técnicas Analíticas Microfluídicas/instrumentación , Microfluídica/instrumentación , Papel , Bacterias/aislamiento & purificación , Productos Biológicos/análisis , Biomarcadores/análisis , Colorimetría/métodos , Técnicas Electroquímicas , Inocuidad de los Alimentos/métodos , Humanos , Mediciones Luminiscentes , Técnicas Analíticas Microfluídicas/tendencias , Microfluídica/métodos , Microfluídica/tendencias , Plaguicidas/análisis , Procesos Fotoquímicos
4.
Electrophoresis ; 31(15): 2487-98, 2010 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-20665911

RESUMEN

The interest in low-cost microfluidic platforms as well as emerging microfabrication techniques has increased considerably over the last years. Toner- and paper-based techniques have appeared as two of the most promising platforms for the production of disposable devices for on-chip applications. This review focuses on recent advances in the fabrication techniques and in the analytical/bioanalytical applications of toner and paper-based devices. The discussion is divided in two parts dealing with (i) toner and (ii) paper devices. Examples of miniaturized devices fabricated by using direct-printing or toner transfer masking in polyester-toner, glass, PDMS as well as conductive platforms as recordable compact disks and printed circuit board are presented. The construction and the use of paper-based devices for off-site diagnosis and bioassays are also described to cover this emerging platform for low-cost diagnostics.


Asunto(s)
Dispositivos Laboratorio en un Chip , Dispositivos Laboratorio en un Chip/tendencias , Microfluídica/instrumentación , Animales , Diseño de Equipo , Humanos , Dispositivos Laboratorio en un Chip/economía , Procedimientos Analíticos en Microchip/economía , Procedimientos Analíticos en Microchip/tendencias , Microfluídica/economía , Microfluídica/tendencias , Papel
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