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All-Optical Electrophysiology in hiPSC-Derived Neurons With Synthetic Voltage Sensors.

Authors :
Puppo, Francesca
Puppo, Francesca
Sadegh, Sanaz
Trujillo, Cleber A
Thunemann, Martin
Campbell, Evan P
Vandenberghe, Matthieu
Shan, Xiwei
Akkouh, Ibrahim A
Miller, Evan W
Bloodgood, Brenda L
Silva, Gabriel A
Dale, Anders M
Einevoll, Gaute T
Djurovic, Srdjan
Andreassen, Ole A
Muotri, Alysson R
Devor, Anna
Puppo, Francesca
Puppo, Francesca
Sadegh, Sanaz
Trujillo, Cleber A
Thunemann, Martin
Campbell, Evan P
Vandenberghe, Matthieu
Shan, Xiwei
Akkouh, Ibrahim A
Miller, Evan W
Bloodgood, Brenda L
Silva, Gabriel A
Dale, Anders M
Einevoll, Gaute T
Djurovic, Srdjan
Andreassen, Ole A
Muotri, Alysson R
Devor, Anna
Publication Year :
2021

Abstract

Voltage imaging and "all-optical electrophysiology" in human induced pluripotent stem cell (hiPSC)-derived neurons have opened unprecedented opportunities for high-throughput phenotyping of activity in neurons possessing unique genetic backgrounds of individual patients. While prior all-optical electrophysiology studies relied on genetically encoded voltage indicators, here, we demonstrate an alternative protocol using a synthetic voltage sensor and genetically encoded optogenetic actuator that generate robust and reproducible results. We demonstrate the functionality of this method by measuring spontaneous and evoked activity in three independent hiPSC-derived neuronal cell lines with distinct genetic backgrounds.

Details

Database :
OAIster
Notes :
application/pdf
Publication Type :
Electronic Resource
Accession number :
edsoai.on1367394334
Document Type :
Electronic Resource