Directing Neuronal Outgrowth and Network Formation of Rat Cortical Neurons by Cyclic Substrate Stretch.


Journal

Langmuir : the ACS journal of surfaces and colloids
ISSN: 1520-5827
Titre abrégé: Langmuir
Pays: United States
ID NLM: 9882736

Informations de publication

Date de publication:
11 06 2019
Historique:
pubmed: 16 8 2018
medline: 25 6 2020
entrez: 16 8 2018
Statut: ppublish

Résumé

Neuronal mechanobiology plays a vital function in brain development and homeostasis with an essential role in neuronal maturation, pathfinding, and differentiation but is also crucial for understanding brain pathology. In this study, we constructed an in vitro system to assess neuronal responses to cyclic strain as a mechanical signal. The selected strain amplitudes mimicked physiological as well as pathological conditions. By subjecting embryonic neuronal cells to cyclic uniaxial strain we could steer the direction of neuronal outgrowth perpendicular to strain direction for all applied amplitudes. A long-term analysis proved maintained growth direction. Moreover, stretched neurons showed an enhanced length, growth, and formation of nascent side branches with most elevated growth rates subsequent to physiological straining. Application of cyclic strain to already formed neurites identified retraction bulbs with destabilized microtubule structures as spontaneous responses. Importantly, neurons were able to adapt to the mechanical signals without induction of cell death and showed a triggered growth behavior when compared to unstretched neurons. The data suggest that cyclic strain plays a critical role in neuronal development.

Identifiants

pubmed: 30110535
doi: 10.1021/acs.langmuir.8b02003
doi:

Substances chimiques

Microtubule-Associated Proteins 0
Mtap2 protein, mouse 0
Tubulin 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

7423-7431

Auteurs

Jella-Andrea Abraham (JA)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

Christina Linnartz (C)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

Georg Dreissen (G)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

Ronald Springer (R)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

Stefan Blaschke (S)

Department of Neurology , University Hospital of Cologne , Cologne 50937 , Germany.
Institute of Neuroscience and Medicine (INM-3): Cognitive Neuroscience , Research Centre Jülich , Jülich 52425 , Germany.

Maria A Rueger (MA)

Department of Neurology , University Hospital of Cologne , Cologne 50937 , Germany.
Institute of Neuroscience and Medicine (INM-3): Cognitive Neuroscience , Research Centre Jülich , Jülich 52425 , Germany.

Gereon R Fink (GR)

Department of Neurology , University Hospital of Cologne , Cologne 50937 , Germany.
Institute of Neuroscience and Medicine (INM-3): Cognitive Neuroscience , Research Centre Jülich , Jülich 52425 , Germany.

Bernd Hoffmann (B)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

Rudolf Merkel (R)

Institute of Complex Systems (ICS-7): Biomechanics , Research Centre Jülich , Jülich 52425 , Germany.

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Classifications MeSH