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Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways

The identification of biomaterials which promote neuronal maturation up to the generation of integrated neural circuits is fundamental for modern neuroscience. The development of neural circuits arises from complex maturative processes regulated by poorly understood signaling events, often guided by...

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Autores principales: Schulte, Carsten, Ripamonti, Maddalena, Maffioli, Elisa, Cappelluti, Martino A., Nonnis, Simona, Puricelli, Luca, Lamanna, Jacopo, Piazzoni, Claudio, Podestà, Alessandro, Lenardi, Cristina, Tedeschi, Gabriella, Malgaroli, Antonio, Milani, Paolo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114288/
https://www.ncbi.nlm.nih.gov/pubmed/27917111
http://dx.doi.org/10.3389/fncel.2016.00267
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author Schulte, Carsten
Ripamonti, Maddalena
Maffioli, Elisa
Cappelluti, Martino A.
Nonnis, Simona
Puricelli, Luca
Lamanna, Jacopo
Piazzoni, Claudio
Podestà, Alessandro
Lenardi, Cristina
Tedeschi, Gabriella
Malgaroli, Antonio
Milani, Paolo
author_facet Schulte, Carsten
Ripamonti, Maddalena
Maffioli, Elisa
Cappelluti, Martino A.
Nonnis, Simona
Puricelli, Luca
Lamanna, Jacopo
Piazzoni, Claudio
Podestà, Alessandro
Lenardi, Cristina
Tedeschi, Gabriella
Malgaroli, Antonio
Milani, Paolo
author_sort Schulte, Carsten
collection PubMed
description The identification of biomaterials which promote neuronal maturation up to the generation of integrated neural circuits is fundamental for modern neuroscience. The development of neural circuits arises from complex maturative processes regulated by poorly understood signaling events, often guided by the extracellular matrix (ECM). Here we report that nanostructured zirconia surfaces, produced by supersonic cluster beam deposition of zirconia nanoparticles and characterized by ECM-like nanotopographical features, can direct the maturation of neural networks. Hippocampal neurons cultured on such cluster-assembled surfaces displayed enhanced differentiation paralleled by functional changes. The latter was demonstrated by single-cell electrophysiology showing earlier action potential generation and increased spontaneous postsynaptic currents compared to the neurons grown on the featureless unnaturally flat standard control surfaces. Label-free shotgun proteomics broadly confirmed the functional changes and suggests furthermore a vast impact of the neuron/nanotopography interaction on mechanotransductive machinery components, known to control physiological in vivo ECM-regulated axon guidance and synaptic plasticity. Our results indicate a potential of cluster-assembled zirconia nanotopography exploitable for the creation of efficient neural tissue interfaces and cell culture devices promoting neurogenic events, but also for unveiling mechanotransductive aspects of neuronal development and maturation.
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spelling pubmed-51142882016-12-02 Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways Schulte, Carsten Ripamonti, Maddalena Maffioli, Elisa Cappelluti, Martino A. Nonnis, Simona Puricelli, Luca Lamanna, Jacopo Piazzoni, Claudio Podestà, Alessandro Lenardi, Cristina Tedeschi, Gabriella Malgaroli, Antonio Milani, Paolo Front Cell Neurosci Neuroscience The identification of biomaterials which promote neuronal maturation up to the generation of integrated neural circuits is fundamental for modern neuroscience. The development of neural circuits arises from complex maturative processes regulated by poorly understood signaling events, often guided by the extracellular matrix (ECM). Here we report that nanostructured zirconia surfaces, produced by supersonic cluster beam deposition of zirconia nanoparticles and characterized by ECM-like nanotopographical features, can direct the maturation of neural networks. Hippocampal neurons cultured on such cluster-assembled surfaces displayed enhanced differentiation paralleled by functional changes. The latter was demonstrated by single-cell electrophysiology showing earlier action potential generation and increased spontaneous postsynaptic currents compared to the neurons grown on the featureless unnaturally flat standard control surfaces. Label-free shotgun proteomics broadly confirmed the functional changes and suggests furthermore a vast impact of the neuron/nanotopography interaction on mechanotransductive machinery components, known to control physiological in vivo ECM-regulated axon guidance and synaptic plasticity. Our results indicate a potential of cluster-assembled zirconia nanotopography exploitable for the creation of efficient neural tissue interfaces and cell culture devices promoting neurogenic events, but also for unveiling mechanotransductive aspects of neuronal development and maturation. Frontiers Media S.A. 2016-11-18 /pmc/articles/PMC5114288/ /pubmed/27917111 http://dx.doi.org/10.3389/fncel.2016.00267 Text en Copyright © 2016 Schulte, Ripamonti, Maffioli, Cappelluti, Nonnis, Puricelli, Lamanna, Piazzoni, Podestà, Lenardi, Tedeschi, Malgaroli and Milani. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
Schulte, Carsten
Ripamonti, Maddalena
Maffioli, Elisa
Cappelluti, Martino A.
Nonnis, Simona
Puricelli, Luca
Lamanna, Jacopo
Piazzoni, Claudio
Podestà, Alessandro
Lenardi, Cristina
Tedeschi, Gabriella
Malgaroli, Antonio
Milani, Paolo
Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title_full Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title_fullStr Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title_full_unstemmed Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title_short Scale Invariant Disordered Nanotopography Promotes Hippocampal Neuron Development and Maturation with Involvement of Mechanotransductive Pathways
title_sort scale invariant disordered nanotopography promotes hippocampal neuron development and maturation with involvement of mechanotransductive pathways
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5114288/
https://www.ncbi.nlm.nih.gov/pubmed/27917111
http://dx.doi.org/10.3389/fncel.2016.00267
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