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Low Forces Push the Maturation of Neural Precursors into Neurons
Authors:Sara De Vincentiis  Matteo Baggiani  Francesca Merighi  Valentina Cappello  Jakub Lopane  Mariachiara Di Caprio  Mario Costa  Marco Mainardi  Marco Onorati  Vittoria Raffa
Affiliation:1. Department of Biology, Università di Pisa, Pisa, 56127 Italy;2. Center for Materials Interfaces, Istituto Italiano di Tecnologia, Pontedera, 56025 Italy;3. Laboratory of Biology “Bio@SNS”, Scuola Normale Superiore, Piazza dei Cavalieri 7, Pisa, 56126 Italy;4. Neuroscience Institute, National Research Council, via Giuseppe Moruzzi 1, Pisa, 56124 Italy
Abstract:Mechanical stimulation modulates neural development and neuronal activity. In a previous study, magnetic “nano-pulling” is proposed as a tool to generate active forces. By loading neural cells with magnetic nanoparticles (MNPs), a precise force vector is remotely generated through static magnetic fields. In the present study, human neural stem cells (NSCs) are subjected to a standard differentiation protocol, in the presence or absence of nano-pulling. Under mechanical stimulation, an increase in the length of the neural processes which showed an enrichment in microtubules, endoplasmic reticulum, and mitochondria is found. A stimulation lasting up to 82 days induces a strong remodeling at the level of synapse density and a re-organization of the neuronal network, halving the time required for the maturation of neural precursors into neurons. The MNP-loaded NSCs are then transplanted into mouse spinal cord organotypic slices, demonstrating that nano-pulling stimulates the elongation of the NSC processes and modulates their orientation even in an ex vivo model. Thus, it is shown that active mechanical stimuli can guide the outgrowth of NSCs transplanted into the spinal cord tissue. The findings suggest that mechanical forces play an important role in neuronal maturation which could be applied in regenerative medicine.
Keywords:maturation  mechanotransduction  neural stem cells  regeneration  spinal cords
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