A humanin vitroneuronal model for studying homeostatic plasticity at the network level

Author:

Yuan Xiuming,Puvogel Sofía,van Rhijn Jon-Ruben,Esteve-Codina Anna,Meijer Mandy,Rouschop Simon,van Hugte Eline J.H.,Oudakker Astrid,Schoenmaker Chantal,Schubert Dirk,Franke Barbara,Nadif Kasri Nael

Abstract

SummaryMechanisms that underlie homeostatic plasticity have been extensively investigated at single-cell levels in animal models, but are less well understood at the network level. Here, we used microelectrode arrays to characterize neuronal networks following induction of homeostatic plasticity in human induced pluripotent stem cell (hiPSC)-derived glutamatergic neurons co-cultured with rat astrocytes. Chronic suppression of neuronal activity through tetrodotoxin (TTX) elicited a time-dependent network re-arrangement. Increased expression of AMPA receptors and the elongation of axon initial segments were associated with increased network excitability following TTX treatment. Transcriptomic profiling of TTX-treated neurons revealed up-regulated genes related to extracellular matrix organization, while down-regulated genes related to cell communication; also astrocytic gene expression was found altered. Overall, our study shows that hiPSC-derived neuronal networks provide a reliablein vitroplatform to measure and characterize homeostatic plasticity at network and single-cell level; this platform can be extended to investigate altered homeostatic plasticity in brain disorders.

Publisher

Cold Spring Harbor Laboratory

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