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Substrate elasticity induces quiescence and promotes neurogenesis of primary neural stem cells-A biophysical in vitro model of the physiological cerebral milieu.
Blaschke, Stefan; Vay, Sabine Ulrike; Pallast, Niklas; Rabenstein, Monika; Abraham, Jella-Andrea; Linnartz, Christina; Hoffmann, Marco; Hersch, Nils; Merkel, Rudolf; Hoffmann, Bernd; Fink, Gereon Rudolf; Rueger, Maria Adele.
Afiliación
  • Blaschke S; Department of Neurology, University Hospital Cologne, Cologne, Germany.
  • Vay SU; Cognitive Neuroscience, Institute of Neuroscience and Medicine (INM-3), Juelich, Germany.
  • Pallast N; Department of Neurology, University Hospital Cologne, Cologne, Germany.
  • Rabenstein M; Department of Neurology, University Hospital Cologne, Cologne, Germany.
  • Abraham JA; Department of Neurology, University Hospital Cologne, Cologne, Germany.
  • Linnartz C; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Hoffmann M; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Hersch N; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Merkel R; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Hoffmann B; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Fink GR; Biomechanics Section, Institute of Complex Systems (ICS-7), Juelich, Germany.
  • Rueger MA; Department of Neurology, University Hospital Cologne, Cologne, Germany.
J Tissue Eng Regen Med ; 13(6): 960-972, 2019 06.
Article en En | MEDLINE | ID: mdl-30815982
ABSTRACT
In the brain, neural stem cells (NSC) are tightly regulated by external signals and biophysical cues mediated by the local microenvironment or "niche." In particular, the influence of tissue elasticity, known to fundamentally affect the function of various cell types in the body, on NSC remains poorly understood. We, accordingly, aimed to characterize the effects of elastic substrates on critical NSC functions. Primary rat NSC were grown as monolayers on polydimethylsiloxane- (PDMS-) based gels. PDMS-coated cell culture plates, simulating the physiological microenvironment of the living brain, were generated in various degrees of elasticity, ranging from 1 to 50 kPa; additionally, results were compared with regular glass plates as usually used in cell culture work. Survival of NSC on the PDMS-based substrates was unimpaired. The proliferation rate on 1 kPa PDMS decreased by 45% compared with stiffer PMDS substrates of 50 kPa (p < 0.05) whereas expression of cyclin-dependent kinase inhibitor 1B/p27Kip1 increased more than two fold (p < 0.01), suggesting NSC quiescence. NSC differentiation was accelerated on softer substrates and favored the generation of neurons (42% neurons on 1 kPa PDMS vs. 25% on 50 kPa PDMS; p < 0.05). Neurons generated on 1 kPa PDMS showed 29% longer neurites compared with those on stiffer PDMS substrates (p < 0.05), suggesting optimized neuronal maturation and an accelerated generation of neuronal networks. Data show that primary NSC are significantly affected by the mechanical properties of their microenvironment. Culturing NSC on a substrate of brain-like elasticity keeps them in their physiological, quiescent state and increases their neurogenic potential.
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Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Encéfalo / Elasticidad / Fenómenos Biofísicos / Neurogénesis / Células-Madre Neurales Límite: Animals Idioma: En Revista: J Tissue Eng Regen Med Asunto de la revista: BIOTECNOLOGIA / HISTOLOGIA Año: 2019 Tipo del documento: Article País de afiliación: Alemania

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Asunto principal: Encéfalo / Elasticidad / Fenómenos Biofísicos / Neurogénesis / Células-Madre Neurales Límite: Animals Idioma: En Revista: J Tissue Eng Regen Med Asunto de la revista: BIOTECNOLOGIA / HISTOLOGIA Año: 2019 Tipo del documento: Article País de afiliación: Alemania