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Research Article

Strong contact coupling of neuronal growth cones with height-controlled vertical silicon nanocolumns

Seong-Min Kim1Seyeong Lee1Dongyoon Kim1Dong-Hee Kang1Kisuk Yang2Seung-Woo Cho2Jin Seok Lee3Insung S. Choi4( )Kyungtae Kang5( )Myung-Han Yoon1( )
School of Materials Science and EngineeringGwangju Institute of Science and TechnologyGwangju61005Republic of Korea
Department of BiotechnologyYonsei University50 Yonsei-roSeodaemun-guSeoul03722Republic of Korea
Department of ChemistrySookmyung Women's UniversitySeoul04310Republic of Korea
Center for Cell-Encapsulation ResearchDepartment of ChemistryKAISTDaejeon34141Republic of Korea
Department of Applied ChemistryKyung Hee UniversityYonginGyeonggi17104Republic of Korea
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Abstract

In this study, we report that height-controlled vertically etched silicon nano-column arrays (vSNAs) induce strong growth cone-to-substrate coupling and accelerate In vitroneurite development while preserving the essential features of initial neurite formation. Large-scale preparation of vSNAs with flat head morphology enabled the generation of well-controlled topographical stimulation without cellular impalement. A systematic analysis on topography-induced variations on cellular morphology and cytoskeletal dynamics was conducted. In addition, neurite development on the grid-patterned vSNAs exhibited preferential adhesion to the nanostructured region and outgrowth directionality. The arrangement of cytoskeletal proteins and the expression of a focal adhesion complex indicated that a strong coupling existed between the underlying nanocolumns and growth cones. Furthermore, the height-controlled nanocolumn substrates differentially modulated neurite polarization and elongation. Our findings provide an important insight into neuron-nanotopography interactions and their role in cell adhesion and neurite development.

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Nano Research
Pages 2532-2543

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Cite this article:
Kim S-M, Lee S, Kim D, et al. Strong contact coupling of neuronal growth cones with height-controlled vertical silicon nanocolumns. Nano Research, 2018, 11(5): 2532-2543. https://doi.org/10.1007/s12274-017-1878-7

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Received: 06 June 2017
Revised: 10 September 2017
Accepted: 09 October 2017
Published: 07 November 2018
© Tsinghua University Press and Springer-Verlag GmbH Germany 2017