Jens C. Schwamborn
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Research Interests
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Recent Grants
Grant: Close
Midbrain-Striatum-Assembloids to model synapse function alteration in Parkinson`s disease
Open Date: 2023-08-01
Close Date: 2026-07-01
Grant: Close
PDage - Age-induced Organoid Models for Deciphering Risk Factors of Parkinson’s Disease
Open Date: 2021-01-01
Close Date: 2023-02-01
Grant: Close
spacePD - Microgravity as a Testbed for Advanced Research in Parkinson Disease Modeling
Open Date: 2020-07-01
Close Date: 2022-06-01
Grant: Close
CONNECT - Connecting neural networks: Nervous-system-on-Chip Technology
Open Date: 2019-01-01
Close Date: 2023-12-01
Grant: Close
NCER-PD -The National Centre of Excellence in Research on Parkinson's Disease
Open Date: 2019-01-01
Close Date: 2023-01-01
Articles (11)
Microglia integration into human midbrain organoids leads to increased neuronal maturation and functionality
The human brain is a complex, three‐dimensional structure. To better recapitulate brain complexity, recent efforts have focused on the development of human‐specific midbrain organoids. Human iPSC‐derived midbrain organoids consist of differentiated and functional neurons, which contain active synapses, as well as astrocytes and oligodendrocytes. However, the absence of microglia, with their ability to remodel neuronal networks and phagocytose apoptotic cells and debris, represents a major disadvantage for the current midbrain organoid systems. Additionally, neuroinflammation‐related disease modeling is not possible in the absence of microglia. So far, no studies about the effects of human iPSC‐derived microglia on midbrain organoid neural cells have been published. Here we describe an approach to derive microglia from human iPSCs and integrate them into iPSC‐derived midbrain organoids. Using single nuclear RNA Sequencing, we provide a detailed characterization of microglia in midbrain organoids as well as the influence of their presence on the other cells of the organoids. Furthermore, we describe the effects that microglia have on cell death and oxidative stress‐related gene expression. Finally, we show that microglia in midbrain organoids affect synaptic remodeling and increase neuronal excitability. Altogether, we show a more suitable system to further investigate brain development, as well as neurodegenerative diseases and neuroinflammation.
Year:
2022
Collaborators (13)
Silvia Bolognin
Assistant Professor/ Principal Investigator
-
David Gracias
Professor
Johns Hopkins University
Tsukasa Kouno
Research Institute of Industrial Science and Technology
Enrico Glaab
-
Daniel Tornero
Professor
University of Barcelona
Pauline Mencke
Saarland University
Wim Mandemakers
Erasmus University Rotterdam
Maria Teresa Valenti
University of Verona
Rudi Balling
Senior Professor
University of Bonn
Christine Klein
-
Coralie Guerin
Co-Head of EVs platform
Institut Curie
Luca Dalle Carbonare
University of Verona
Davide G. Franchina
Stanford University School of Medicine

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