Interactions of neurons with topographic nano cues affect branching morphology mimicking neuron-neuron interactions

被引:36
作者
Baranes, Koby [1 ,2 ]
Kollmar, Davida [1 ,3 ]
Chejanovsky, Nathan [2 ,4 ]
Sharoni, Amos [2 ,4 ]
Shefi, Orit [1 ,2 ]
机构
[1] Bar Ilan Univ, Fac Engn, IL-52900 Ramat Gan, Israel
[2] Bar Ilan Inst Nanotechnol & Adv Mat, IL-52900 Ramat Gan, Israel
[3] Yeshiva Univ, Stern Coll Women, New York, NY 10033 USA
[4] Bar Ilan Univ, Dept Phys, IL-52900 Ramat Gan, Israel
关键词
Leech; Culture; Nano-scale cues; Topography; Lithography; Neuronal network; Morphometrics analysis; Neuron-neuron interaction; AXON GUIDANCE; GROWTH CONE; NETWORKS; SUBSTRATE; OUTGROWTH; CELLS;
D O I
10.1007/s10735-012-9422-2
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
We study the effect of topographic nano-cues on neuronal growth-morphology using invertebrate neurons in culture. We use photolithography to fabricate substrates with repeatable line-pattern ridges of nano-scale heights of 10-150 nm. We plate leech neurons atop the patterned-substrates and compare their growth pattern to neurons plated atop non-patterned substrates. The model system allows us the analysis of single neurite-single ridge interactions. The use of high resolution electron microscopy reveals small filopodia processes that attach to the line-pattern ridges. These fine processes, that cannot be detected in light microscopy, add anchoring sites onto the side of the ridges, thus additional physical support. These interactions of the neuronal process dominantly affect the neuronal growth direction. We analyze the response of the entire neuronal branching tree to the patterned substrates and find significant effect on the growth patterns compared to non-patterned substrates. Moreover, interactions with the nano-cues trigger a growth strategy similarly to interactions with other neuronal cells, as reflected in their morphometric parameters. The number of branches and the number of neurites originating from the soma decrease following the interaction demonstrating a tendency to a more simplified neuronal branching tree. The effect of the nano-cues on the neuronal function deserves further investigation and will strengthen our understanding of the interplay between function and form.
引用
收藏
页码:437 / 447
页数:11
相关论文
共 33 条
  • [1] The Regulative Role of Neurite Mechanical Tension in Network Development
    Anava, Sarit
    Greenbaum, Alon
    Ben Jacob, Eshel
    Hanein, Yael
    Ayali, Amir
    [J]. BIOPHYSICAL JOURNAL, 2009, 96 (04) : 1661 - 1670
  • [2] Activation of integrin function by nanopatterned adhesive interfaces
    Arnold, M
    Cavalcanti-Adam, EA
    Glass, R
    Blümmel, J
    Eck, W
    Kantlehner, M
    Kessler, H
    Spatz, JP
    [J]. CHEMPHYSCHEM, 2004, 5 (03) : 383 - 388
  • [3] Topographic cues of nano-scale height direct neuronal growth pattern
    Baranes, Koby
    Chejanovsky, Nathan
    Alon, Noa
    Sharoni, Amos
    Shefi, Orit
    [J]. BIOTECHNOLOGY AND BIOENGINEERING, 2012, 109 (07) : 1791 - 1797
  • [4] Britland S., 1996, Experimental Biology Online, V1, P1, DOI DOI 10.1007/S00898-996-0002-3
  • [5] CLARK P, 1990, DEVELOPMENT, V108, P635
  • [6] Topographical control of cells
    Curtis, A
    Wilkinson, C
    [J]. BIOMATERIALS, 1997, 18 (24) : 1573 - 1583
  • [7] den Braber ET, 1998, J BIOMED MATER RES, V40, P291, DOI 10.1002/(SICI)1097-4636(199805)40:2<291::AID-JBM14>3.3.CO
  • [8] 2-8
  • [9] Direct Microfabrication of Topographical and Chemical Cues for the Guided Growth of Neural Cell Networks on Polyamidoamine Hydrogels
    Dos Reis, Gabriel
    Fenili, Fabio
    Gianfelice, Antonella
    Bongiorno, Gero
    Marchesi, Davide
    Scopelliti, Pasquale Emanuele
    Borgonovo, Antonio
    Podesta, Alessandro
    Indrieri, Marco
    Ranucci, Elisabetta
    Ferruti, Paolo
    Lenardi, Cristina
    Milani, Paolo
    [J]. MACROMOLECULAR BIOSCIENCE, 2010, 10 (08) : 842 - 852
  • [10] Hippocampal neurons respond uniquely to topographies of various sizes and shapes
    Fozdar, David Y.
    Lee, Jae Young
    Schmidt, Christine E.
    Chen, Shaochen
    [J]. BIOFABRICATION, 2010, 2 (03)