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Tracking connectivity maps in human stem cell–derived neuronal networks by holographic optogenetics

View ORCID ProfileFelix Schmieder, View ORCID ProfileRouhollah Habibey, View ORCID ProfileJohannes Striebel, View ORCID ProfileLars Büttner, View ORCID ProfileJürgen Czarske  Correspondence email, View ORCID ProfileVolker Busskamp  Correspondence email
Felix Schmieder
1Laboratory of Measurement and Sensor System Technique, Faculty of Electrical and Computer Engineering, TU Dresden, Dresden, Germany
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  • ORCID record for Felix Schmieder
Rouhollah Habibey
2Department of Ophthalmology, Universitäts-Augenklinik Bonn, University of Bonn, Bonn, Germany
Roles: Resources, Data curation, Software, Formal analysis, Validation, Investigation, Visualization, Methodology, Writing—original draft, review, and editing
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Johannes Striebel
2Department of Ophthalmology, Universitäts-Augenklinik Bonn, University of Bonn, Bonn, Germany
Roles: Validation, Writing—original draft, review, and editing
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Lars Büttner
1Laboratory of Measurement and Sensor System Technique, Faculty of Electrical and Computer Engineering, TU Dresden, Dresden, Germany
Roles: Conceptualization, Supervision, Funding acquisition, Methodology, Project administration, Writing—review and editing
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Jürgen Czarske
1Laboratory of Measurement and Sensor System Technique, Faculty of Electrical and Computer Engineering, TU Dresden, Dresden, Germany
3Competence Center for Biomedical Computational Laser Systems (BIOLAS), TU Dresden, Dresden, Germany
4Cluster of Excellence Physics of Life, TU Dresden, Dresden, Germany
5Institute of Applied Physics, School of Science, TU Dresden, Dresden, Germany
Roles: Conceptualization, Resources, Supervision, Funding acquisition, Writing—review and editing
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  • For correspondence: juergen.czarske@tu-dresden.de
Volker Busskamp
2Department of Ophthalmology, Universitäts-Augenklinik Bonn, University of Bonn, Bonn, Germany
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  • For correspondence: volker.busskamp@ukbonn.de
Published 13 April 2022. DOI: 10.26508/lsa.202101268
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Abstract

Neuronal networks derived from human induced pluripotent stem cells have been exploited widely for modeling neuronal circuits, neurological diseases, and drug screening. As these networks require extended culturing periods to functionally mature in vitro, most studies are based on immature networks. To obtain insights on long-term functional features, we improved a glia–neuron co-culture protocol within multi-electrode arrays, facilitating continuous assessment of electrical features in weekly intervals. By full-field optogenetic stimulation, we detected an earlier onset of neuronal firing and burst activity compared with spontaneous activity. Full-field stimulation enhanced the number of active neurons and their firing rates. Compared with full-field stimulation, which evoked synchronized activity across all neurons, holographic stimulation of individual neurons resulted in local activity. Single-cell holographic stimulation facilitated to trace propagating evoked activities of 400 individually stimulated neurons per multi-electrode array. Thereby, we revealed precise functional neuronal connectivity motifs. Holographic stimulation data over time showed increasing connection numbers and strength with culture age. This holographic stimulation setup has the potential to establish a profound functional testbed for in-depth analysis of human-induced pluripotent stem cell-derived neuronal networks.

  • Received October 21, 2021.
  • Revision received March 25, 2022.
  • Accepted March 29, 2022.
  • © 2022 Schmieder et al.
Creative Commons logoCreative Commons logohttps://creativecommons.org/licenses/by/4.0/

This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).

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Human neuronal network connectivity maps
Felix Schmieder, Rouhollah Habibey, Johannes Striebel, Lars Büttner, Jürgen Czarske, Volker Busskamp
Life Science Alliance Apr 2022, 5 (7) e202101268; DOI: 10.26508/lsa.202101268

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Human neuronal network connectivity maps
Felix Schmieder, Rouhollah Habibey, Johannes Striebel, Lars Büttner, Jürgen Czarske, Volker Busskamp
Life Science Alliance Apr 2022, 5 (7) e202101268; DOI: 10.26508/lsa.202101268
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Volume 5, No. 7
July 2022
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