Magnetic spatiotemporal control of SOS1 coupled nanoparticles for guided neurite growth in dopaminergic single cells

  • The axon regeneration of neurons in the brain can be enhanced by activating intracellular signaling pathways such as those triggered by the membrane-anchored Rat sarcoma (RAS) proto-oncogene. Here we demonstrate the induction of neurite growth by expressing tagged permanently active Harvey-RAS protein or the RAS-activating catalytic domain of the guanine nucleotide exchange factor (SOS1cat), in secondary dopaminergic cells. Due to the tag, the expressed fusion protein is captured by functionalized magnetic nanoparticles in the cytoplasm of the cell. We use magnetic tips for remote translocation of the SOS1cat-loaded magnetic nanoparticles from the cytoplasm towards the inner face of the plasma membrane where the endogenous Harvey-RAS protein is located. Furthermore, we show the magnetic transport of SOS1cat-bound nanoparticles from the cytoplasm into the neurite until they accumulate at its tip on a time scale of minutes. In order to scale-up from single cells, we show the cytoplasmic delivery of the magnetic nanoparticles into large numbers of cells without changing the cellular response to nerve growth factor. These results will serve as an initial step to develop tools for refining cell replacement therapies based on grafted human induced dopaminergic neurons loaded with functionalized magnetic nanoparticles in Parkinson model systems.

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Metadaten
Author:Fabian RaudzusORCiDGND, Hendrik SchönebornORCiDGND, Sebastian NeumannORCiDGND, Emilie SecretORCiDGND, Aude MichelGND, Jérome FresnaisORCiDGND, Oliver BrylskiGND, Christine MénagerORCiDGND, Jean-Michel SiaugueORCiDGND, Rolf HeumannORCiDGND
URN:urn:nbn:de:hbz:294-81292
DOI:https://doi.org/10.1038/s41598-020-80253-w
Parent Title (English):Scientific reports
Publisher:Springer Nature
Place of publication:Berlin
Document Type:Article
Language:English
Date of Publication (online):2021/06/08
Date of first Publication:2020/12/31
Publishing Institution:Ruhr-Universität Bochum, Universitätsbibliothek
Tag:Open Access Fonds
Biochemistry; Cell biology; Diseases; Molecular medicine; Nanoscience and technology; Neuroscience; Stem cells
Volume:10
Issue:Artikel 22452
First Page:22452-1
Last Page:22452-15
Note:
Article Processing Charge funded by the Deutsche Forschungsgemeinschaft (DFG) and the Open Access Publication Fund of Ruhr-Universität Bochum.
Institutes/Facilities:Lehrstuhl Biochemie II, Arbeitsgruppe Molekulare Neurobiochemie
Dewey Decimal Classification:Naturwissenschaften und Mathematik / Chemie, Kristallographie, Mineralogie
open_access (DINI-Set):open_access
faculties:Fakultät für Chemie und Biochemie
Licence (English):License LogoCreative Commons - CC BY 4.0 - Attribution 4.0 International