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Daza, N.

Publications and source records attributed to Daza, N..

2 recordsLinked to original sources

Soft multimodal opto-electric biointerfaces for co-localized optical and electrical recording of cell function

Optical fluorescence and electrical monitoring of cell activity are two powerful approaches to study organ functions. Simultaneous recording of optical and electrical data types will provide complementary information from and take advantage of each approach. However, devices that can concurrently record optical signals from the same cell population underneath the microelectrodes have not been widely explored and remain a grand technical challenge. This work presents an innovative flexible opto-electric device that monolithically integrates transparent gold nanogrid microelectrodes directly above microscale light-emitting diodes, photodetectors, and optical filters to achieve co-localized crosstalk-free optical fluorescence and electrical recording. The optimized gold nanogrid microelectrodes show excellent optical transparency (>81%) and low normalized 1 kHz electrochemical impedance (6.3 {Omega} cm2). The optical recording subsystem offers high wavelength selectivity (>1,300) and linearity (R2 >0.99) for exciting and capturing green fluorescence from various fluorescent reporters in measurement ranges relevant to in vivo applications with minimal thermal effects. The opto-electric device exhibits remarkable durability under soaking for 40 days and repetitive mechanical bending for 5,000 cycles. The work may provide a versatile approach for constructing mechanically compliant biointerfaces containing crosstalk-free optical and electrical modalities with widespread application potentials in basic and clinical research.

bioengineering↗

Multifunctional flexible electro-optical arrays for simultaneous spatiotemporal cardiac mapping and modulation

Bioelectronic devices that allow simultaneous accurate monitoring and control of the spatiotemporal patterns of cardiac activity provide an effective means to understand the mechanisms and optimize therapeutic strategies for heart disease. Optogenetics is a promising technology for cardiac research due to its advantages such as cell-type selectivity and high space-time resolution, but its efficacy is limited by the insufficient number of modulation channels and lack of simultaneous spatiotemporal mapping capabilities in current cardiac optogenetics tools. Here we present soft implantable electro-optical cardiac devices integrating multilayered highly uniform arrays of transparent microelectrodes and multicolor micro-light-emitting-diodes in thin, flexible platforms for mechanically compliant high-content electrical mapping and single-/multi-site optogenetics and electrical stimulation without light-induced artifacts. Systematic benchtop characterizations, together with ex vivo and in vivo evaluations on healthy and diseased small animal and human hearts demonstrate their functionalities in real-time spatiotemporal mapping and control of cardiac rhythm and function, with broad applications in basic and ultimately clinical cardiology.

bioengineering↗