Forced cell cycle exit and modulation of GABAA, CREB, and GSK3β signaling promote functional maturation of induced pluripotent stem cell-derived neurons

Author:

Telezhkin Vsevolod1,Schnell Christian1,Yarova Polina1,Yung Sun1,Cope Emma1,Hughes Alis1,Thompson Belinda A.1,Sanders Philip23,Geater Charlene1,Hancock Jane M.4,Joy Shona1,Badder Luned1,Connor-Robson Natalie1,Comella Andrea23,Straccia Marco23,Bombau Georgina23,Brown Jon T.5,Canals Josep M.23,Randall Andrew D.45,Allen Nicholas D.1,Kemp Paul J.1

Affiliation:

1. School of Biosciences, Cardiff University, Cardiff, United Kingdom;

2. Department of Cell Biology, Immunology and Neuroscience, Faculty of Medicine, IDIBAPS, University of Barcelona, Barcelona, Spain;

3. Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Barcelona, Spain;

4. School of Physiology and Pharmacology, University of Bristol, Bristol, United Kingdom; and

5. Hatherly Laboratory, Institute of Biomedical and Clinical Sciences, University of Exeter Medical School, Exeter, United Kingdom

Abstract

Although numerous protocols have been developed for differentiation of neurons from a variety of pluripotent stem cells, most have concentrated on being able to specify effectively appropriate neuronal subtypes and few have been designed to enhance or accelerate functional maturity. Of those that have, most employ time courses of functional maturation that are rather protracted, and none have fully characterized all aspects of neuronal function, from spontaneous action potential generation through to postsynaptic receptor maturation. Here, we describe a simple protocol that employs the sequential addition of just two supplemented media that have been formulated to separate the two key phases of neural differentiation, the neurogenesis and synaptogenesis, each characterized by different signaling requirements. Employing these media, this new protocol synchronized neurogenesis and enhanced the rate of maturation of pluripotent stem cell-derived neural precursors. Neurons differentiated using this protocol exhibited large cell capacitance with relatively hyperpolarized resting membrane potentials; moreover, they exhibited augmented: 1) spontaneous electrical activity; 2) regenerative induced action potential train activity; 3) Na+ current availability, and 4) synaptic currents. This was accomplished by rapid and uniform development of a mature, inhibitory GABAA receptor phenotype that was demonstrated by Ca2+ imaging and the ability of GABAA receptor blockers to evoke seizurogenic network activity in multielectrode array recordings. Furthermore, since this protocol can exploit expanded and frozen prepatterned neural progenitors to deliver mature neurons within 21 days, it is both scalable and transferable to high-throughput platforms for the use in functional screens.

Funder

CHDI Foundation

European Commission (EC)

National Centre for the Replacement, Refinement and Reduction of Animals in Research (NC3Rs)

Ministerio de Economía y Competitividad (Ministry of Economy and Competitiveness)

european regional development fund

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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