Surface functionalisation of nanodiamonds for human neural stem cell adhesion and proliferation

被引:0
|
作者
Alice C. Taylor
Citlali Helenes González
Benjamin S. Miller
Robert J. Edgington
Patrizia Ferretti
Richard B. Jackman
机构
[1] University College London,London Centre for Nanotechnology and Department of Electronic and Electrical Engineering
[2] UCL Great Ormond Street Institute of Child Health,Stem Cell and Regenerative Medicine Section
[3] University College London,undefined
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Biological systems interact with nanostructured materials on a sub–cellular level. These interactions may govern cell behaviour and the precise control of a nanomaterial's structure and surface chemistry allow for a high degree of tunability to be achieved. Cells are surrounded by an extra–cellular matrix with nano–topographical properties. Diamond based materials, and specifically nanostructured diamond has attracted much attention due to its extreme electrical and mechanical properties, chemical inertness and biocompatibility. Here the interaction of nanodiamond monolayers with human Neural Stem Cells (hNSCs) has been investigated. The effect of altering surface functionalisation of nanodiamonds on hNSC adhesion and proliferation has shown that confluent cellular attachment occurs on oxygen terminated nanodiamonds (O–NDs), but not on hydrogen terminated nanodiamonds (H–NDs). Analysis of H and O–NDs by Atomic Force Microscopy, contact angle measurements and protein adsorption suggests that differences in topography, wettability, surface charge and protein adsorption of these surfaces may underlie the difference in cellular adhesion of hNSCs reported here.
引用
收藏
相关论文
共 50 条
  • [41] Neural stem cell proliferation is decreased in schizophrenia, but not in depression
    A Reif
    S Fritzen
    M Finger
    A Strobel
    M Lauer
    A Schmitt
    K-P Lesch
    Molecular Psychiatry, 2006, 11 : 514 - 522
  • [42] Silicon nanowires enhanced proliferation and neuronal differentiation of neural stem cell with vertically surface microenvironment
    Yan, Qiuting
    Fang, Lipao
    Wei, Jiyu
    Xiao, Guipeng
    Lv, Meihong
    Ma, Quanhong
    Liu, Chunfeng
    Wang, Wang
    JOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION, 2017, 28 (13) : 1394 - 1407
  • [43] Neural stem cell proliferation is decreased in schizophrenia, but not in depression
    Reif, A
    Fritzen, S
    Finger, M
    Strobel, A
    Lauer, M
    Schmitt, A
    Lesch, KP
    MOLECULAR PSYCHIATRY, 2006, 11 (05) : 514 - 522
  • [44] Cytokine Modulation of Enteric Neural Stem Cell Proliferation
    Becker, Laren
    Habtezion, Aida
    GASTROENTEROLOGY, 2014, 146 (05) : S525 - S526
  • [45] Optimized protocol for analysis of neural stem proliferation in human-pluripotent-stem-cell-derived cerebral organoids
    Tang, Xiao-Yan
    Wang, Da
    Zhang, Xin-Yue
    Xu, Min
    Liu, Yan
    STAR PROTOCOLS, 2023, 4 (02):
  • [46] Regulators of human stem cell proliferation and engraftment
    Eaves, A
    Cashman, J
    Eaves, C
    INTERNATIONAL JOURNAL OF HEMATOLOGY, 2002, 76 (Suppl 1) : 159 - 159
  • [47] Regulators of human stem cell proliferation and engraftment
    Allen Eaves
    Jody Cashman
    Connie Eaves
    International Journal of Hematology, 2002, 76 : 159 - 159
  • [48] A simple technique of constructing nano-roughened polydimethylsiloxane surface to enhance mesenchymal stem cell adhesion and proliferation
    Peng Xue
    Qian Li
    Lihong Sun
    Lei Zhang
    Zhigang Xu
    Chang Ming Li
    Yuejun Kang
    Microfluidics and Nanofluidics, 2018, 22
  • [49] Icariin promotes cell proliferation and regulates gene expression in human neural stem cells in vitro
    Yang, Pan
    Guan, Yun-Qian
    Li, Ya-Li
    Zhang, Li
    Zhang, Lan
    Li, Lin
    MOLECULAR MEDICINE REPORTS, 2016, 14 (02) : 1316 - 1322
  • [50] A simple technique of constructing nano-roughened polydimethylsiloxane surface to enhance mesenchymal stem cell adhesion and proliferation
    Xue, Peng
    Li, Qian
    Sun, Lihong
    Zhang, Lei
    Xu, Zhigang
    Li, Chang Ming
    Kang, Yuejun
    MICROFLUIDICS AND NANOFLUIDICS, 2018, 22 (01)