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Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision (CROSBI ID 310159)

Prilog u časopisu | izvorni znanstveni rad | međunarodna recenzija

Schmidt, Tony ; Jakešová, Marie ; Đerek, Vedran ; Kornmueller, Karin ; Tiapko, Oleksandra ; Bischof, Helmut ; Burgstaller, Sandra ; Waldherr, Linda ; Nowakowska, Marta ; Baumgartner, Christian et al. Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision // Advanced Materials Technologies, (2022), 2101159; 2101159, 16. doi: 10.1002/admt.202101159

Podaci o odgovornosti

Schmidt, Tony ; Jakešová, Marie ; Đerek, Vedran ; Kornmueller, Karin ; Tiapko, Oleksandra ; Bischof, Helmut ; Burgstaller, Sandra ; Waldherr, Linda ; Nowakowska, Marta ; Baumgartner, Christian ; Üçal, Muammer ; Leitinger, Gerd ; Scheruebel, Susanne ; Patz, Silke ; Malli, Roland ; Głowacki, Eric Daniel ; Rienmüller, Theresa ; Schindl, Rainer

engleski

Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision

Nongenetic optical control of neurons is a powerful technique to study and manipulate the function of the nervous system. This research has benchmarked the performance of organic electrolytic photocapacitor (OEPC) optoelectronic stimulators at the level of single mammalian cells: human embryonic kidney (HEK) cells with heterologously expressed voltage-gated K+ channels and hippocampal primary neurons. OEPCs act as extracellular stimulation electrodes driven by deep red light. The electrophysiological recordings show that millisecond light stimulation of OEPC shifts conductance-voltage plots of voltage-gated K+ channels by ≈30 mV. Models are described both for understanding the experimental findings at the level of K+ channel kinetics in HEK cells, as well as elucidating interpretation of membrane electrophysiology obtained during stimulation with an electrically floating extracellular photoelectrode. A time-dependent increase in voltage-gated channel conductivity in response to OEPC stimulation is demonstrated. These findings are then carried on to cultured primary hippocampal neurons. It is found that millisecond time-scale optical stimuli trigger repetitive action potentials in these neurons. The findings demonstrate that OEPC devices enable the manipulation of neuronal signaling activities with millisecond precision. OEPCs can therefore be integrated into novel in vitro electrophysiology protocols, and the findings can inspire in vivo applications.

electrostimulation, bioelectronics, photocapacitor, organic, neuron, hek

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Podaci o izdanju

(2101159)

2022.

2101159

16

objavljeno

2365-709X

10.1002/admt.202101159

Povezanost rada

Biotehnologija u biomedicini (prirodno područje, biomedicina i zdravstvo, biotehničko područje), Fizika, Interdisciplinarne biotehničke znanosti

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