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Silicon Nanowire-Based Methodology for Quantifying Single Cell Traction Force |
NIU Yong-shan1,2, YAN Ling1, DAI Ming1, FAN Yu-bo1,2, LI Zhou1,2 |
1. School of Biological Science and Medical Engineering, Beihang University, Beijing 100191, China; 2. Key Lab for Biomechanics and Mechanobiology of Ministry of Education, Beihang University, Beijing 100191, China |
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Abstract In this paper, we present a new method, a silicon-nanowire-array based technique for quantifying the mechanical behavior of single cells, representing three distinct groups: normal mammalian cells, benign cells (L929) and malignant cells (HeLa). By culturing the cells on top of NW arrays, the maximum traction forces of different cells have been measured by quantitatively analyzing the bending of the nanowires. The elastic modulus of the as-fabricated Si-NW arrays was first measured before cell culturing. Finite element (FEM) simulations were carried out in order to derive the relationship between the applied transverse force and the corresponding tip displacement for a Si-NW. Our study is likely important for studying the mechanical properties of single cells and their migration characteristics, possibly providing a new cellular level diagnostic technique.
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Received: 05 September 2018
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Fund:New Teachers' Fund for Doctor Stations, Ministry of Education; grant number: 20111102120038 |
Corresponding Authors:
FAN Yu-bo. E-mail: yubofan@buaa.edu.cn
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[1] Addae-Mensah KA, Wikswo JP. Measurement techniques for cellular biomechanics in vitro[J]. Experimental Biology and Medicine, 2008, 233, (7): 792-805. [2] Cross SE, Jin YS, Rao J, et al.Nanomechanical analysis of cells from cancer patients[J]. Nature Nanotechnology, 2007, 2: 780-783. [3] Wang JH, Lin JS.Cell traction force and measurement methods[J]. Biomechanics and Modeling Mechanobiology, 2007, 6(6): 361. [4] (a) Mussig E, Steinberg T, et al. Connective in tissue fibroblasts established on micropillar interfaces are pivotal for epithelial tissue morphogenesis[J]. Advanced Functional Materials, 2008, 8(19): 2918-2929. (b) Saez A, Ghibaudo M, et al. Rigidity-driven growth and migration of epithelial cells on microstructured anisotropic substrates[J]. Proceedings of the National Academy of Sciences, 2007, 104(20): 8281-8286. [5] Balaban NQ, Schwarz US, Riveline D, et al.Force and focal adhesion assembly: a close relationship studied using elastic micropatterned substrates[J]. Nature Cell Biology, 2001, 3(5): 466-472. [6] Choquet D, Felsenfeld DP, Sheetz MP.Extracellular matrix rigidity causes strengthening of integrin-cytoskeleton linkages[J]. Cell, 1997, 88(1): 39-48. [7] Sniadecki NJ, Desai RA, Ruiz SA, et al.Nanetechnology for cell-substrate interactions[J]. Annals of Biomedical Engineering, 2006, 34(1): 59-74. [8] (a) Bell E, Ivarsson B. Proceedings of the National Academy of Sciences, 1979, 76: 3. (b)Campbell BH, Clark WW. Biomechanics, 2003, 36: 1. (c) Ferrenq I, Tranqui L. Acta Biotheoretica, 1997, 45: 3-4. [9] (a) Harris AK, Stopak D. Nature, 1981, 290: 5803.(b) Burton K, Taylor DL. Nature, 1997, 385: 6615. [10] Tan JL, Tien J. Proceedings of the National Academy of Sciences, 2003, 100: 4. [11] (a) Yang MT, Sniadecki NJ, Chen CS. Advanced Materials, 2007, 9: 20. (b) Xiang Y, LaVan DA. Applied Physics Letters, 2007, 90: 13. (c)Chandra D, Taylor JA. Soft Matter, 2008, 4: 5. (d) Milner KR, Siedlecki CA. Journal of Biomedical Materials Research, Part A 2007, 82A: 1. (e) Yang ZC, Linb JS, Chen JX, et al. Journal of Theoretical Biology, 2006, 242: 3. [12] Ghibaudo M, Saez A.Traction forces and rigidity sensing regulate cell functions[J]. Soft Matter, 2008, 4(9): 1936-1843. [13] Das T, Maitia TK, Chakraborty S. Lab on a Chip, 2008, 8: 8. [14] Li B, Xie L. Cell Motility and the Cytoskeleton, 2007, 64: 7. [15] Schwarz US, Balaban NQ.Force and focal adhesion assembly[J]. Biophysical Journal, 2002, 83(3): 1380-1394. [16] Patolsky F, Timko BP, Yu GH, et al.Detection, stimulation and inhibition of neuronal signal with high-density nanowire transistor arrays[J]. Science, 2006, 313: 5790. [17] Cohen-Karni T, Timko BP. Proceedings of the National Academy of Sciences USA, 2009, 106: 18. [18] Timko BP, Cohen-Karni TM. Nano Letters, 2009, 9: 2. [19] Patolsky F, Zheng G, Lieber CM. Analytical Chemistry, 2006, 78: 13. [20] Lieber CM, Wang ZL. MRS Bulletin, 2007, 32: 99-104. [21] Patolsky F, Zheng,G, Lieber CM. Nanomedicine, 2006, 1: 1. [22] Huang Z, Fang H, Zhu J. Advanced Materials, 2007, 9: 744. [23] Roure OD, Saez A. Proceedings of the National Academy of Sciences USA, 2005, 102: 7. [24] Kim W, Ng JK. Journal of the American Chemical Society, 2007, 129: 23. [25] Li Z, Yang RS. Journal of Physical Chemistry C, 2009, 2: 51. [26] Li Z, Song JH.Quantifying the traction force of a single cell by aligned silicon nanowire array[J]. Nano Letters, 2009, 9(10): 3575-3580. [27] Song JH, Wang XD. Nano Letters, 2005, 5: 10. [28] NIH U.S.A. [2018-11-15]. S.A. [2018-11-15]. http://rsb.info.nih.gov/ij/Java l.5.0_09. |
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