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Tunable neuronal scaffold biomaterials through plasmonic photo-patterning of aerogels

Published online by Cambridge University Press:  07 November 2019

Martina Rodriguez Sala
Affiliation:
Department of Physics and Materials Science, University of Memphis, Memphis, TN38152, USA
Chenhui Peng*
Affiliation:
Department of Physics and Materials Science, University of Memphis, Memphis, TN38152, USA
Omar Skalli
Affiliation:
Department of Biological Sciences, University of Memphis, Memphis, TN38152, USA
Firouzeh Sabri*
Affiliation:
Department of Physics and Materials Science, University of Memphis, Memphis, TN38152, USA
*
Address all correspondence to Firouzeh Sabri at fsabri@memphis.edu and Chenhui Peng at cpeng@memphis.edu
Address all correspondence to Firouzeh Sabri at fsabri@memphis.edu and Chenhui Peng at cpeng@memphis.edu
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Abstract

The authors have shown recently that the neurite extension by neuronal PC12 cells is greatly impacted by aerogel topography. Indeed, the average neurite length of PC-12 cells grown on aerogels is greater than that in cells cultured on control substrates. Here, the authors report on the first experimental study focused on the design and development of a plasmonic photo-patterning technique for collagen-coated mesoporous aerogel biomaterials. Herein, the authors have produced specific patterns on silica aerogels by performing precise plasmonic photo-patterning on liquid crystal-coated aerogels. The authors report the methodology employed to create a collagen–liquid crystal gel mixture imprinted with precise plasmonic photo-patterns. PC12 cells plated on these patterns did attach and survive and followed the spatial cues of the pattern to align themselves in a similar pattern.

Type
Research Letters
Copyright
Copyright © Materials Research Society 2019

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References

1Hronik-Tupaj, M., Raja, W.K., Tang-Schomer, M., Omenetto, F.G., and Kaplan, D.L.: Neural responses to electrical stimulation on patterned silk films. J. Biomed. Mater. Res. A 101, 25592572 (2013).CrossRefGoogle ScholarPubMed
2Diekmann, H. and Fischer, D.: Parthenolide: a novel pharmacological approach to promote nerve regeneration. Neural Regener. Res. 11, 15661567 (2016).Google ScholarPubMed
3Hoffman-Kim, D., Mitchel, J.A., and Bellamkonda, R.V.: Topography, cell response, and nerve regeneration. Annu. Rev. Biomed. Eng. 12, 203231 (2010).CrossRefGoogle ScholarPubMed
4Lim, J.Y. and Donahue, H.J.: Cell sensing and response to micro-and nanostructured surfaces produced by chemical and topographic patterning. Tissue Eng. 13, 18791891 (2007).CrossRefGoogle ScholarPubMed
5Lynch, K.J., Skalli, O., and Sabri, F.: Growing neural PC-12 cell on crosslinked silica aerogels increases neurite extension in the presence of an electric field. J. Funct. Biomater. 9, 30 (2018).CrossRefGoogle ScholarPubMed
6Lynch, K.J., Skalli, O., and Sabri, F.: Investigation of surface topography and stiffness on adhesion and neurites extension of PC12 cells on crosslinked silica aerogel substrates. PLoS One 12 (2017).CrossRefGoogle ScholarPubMed
7Sabri, F., Sebelik, M.E., Meacham, R., Boughter, J.D. Jr., Challis, M.J., and Leventis, N.: In vivo ultrasonic detection of polyurea crosslinked silica aerogel implants. PLoS ONE 8 (2013).CrossRefGoogle ScholarPubMed
8Sabri, F., Boughter, J.D. Jr., Gerth, D., Skalli, O., Phung, T.-C.N., Tamula, G.-R.M., and Leventis, N.: Histological evaluation of the biocompatibility of polyurea crosslinked silica aerogel implants in a rat model: a pilot study. PLoS ONE 7 (2012).Google Scholar
9Sabri, F., Cole, J.A., Scarbrough, M.C., and Leventis, N.: Investigation of polyurea-crosslinked silica aerogels as a neuronal scaffold: a pilot study. PLoS ONE 7 (2012).Google ScholarPubMed
10Rodriguez Sala, M., Lynch, K.J., Chandrasekaran, S., Skalli, O., Worsley, M., and Sabri, F.: PC-12 cells adhesion and differentiation on carbon aerogel scaffolds. MRS Commun. 8, 14261432 (2018).CrossRefGoogle Scholar
11Hadley, J., Hirschman, J., Morshed, B.I., and Sabri, F.: RF coupling of interdigitated electrode array on aerogels for in vivo nerve guidance applications. MRS Adv. 4, 12371244 (2019).CrossRefGoogle Scholar
12Sabri, F., Gerth, D., Tamula, G.-R.M., Phung, T.-C.N., Lynch, K.J., and Boughter, J.D. Jr.: Novel technique for repair of severed peripheral nerves in rats using polyurea crosslinked silica aerogel scaffold. J. Invest. Surg. 27, 294303 (2014).CrossRefGoogle ScholarPubMed
13Beeckman, J., Neyts, K., and Vanbrabant, P.J.: Liquid-crystal photonic applications. Opt. Eng. 50, 081202 (2011).CrossRefGoogle Scholar
14McManamon, P.F., Bos, P.J., Escuti, M.J., Heikenfeld, J., Serati, S., Xie, H., and Watson, E.A.: A review of phased array steering for narrow-band electrooptical systems. Proc. IEEE 97, 1078 (2009).CrossRefGoogle Scholar
15Chen, P., Ji, W., Wei, B.Y., Hu, W., Chigrinov, V., and Lu, Y.Q.: Generation of arbitrary vector beams with liquid crystal polarization converters and vector-photoaligned q-plates. Appl. Phys. Lett. 107, 241102 (2015).CrossRefGoogle Scholar
16Wei, B.Y., Hu, W., Ming, Y., Xu, F., Rubin, S., Wang, J.G., Chigrinov, V., and Lu, Y.Q.: Generating switchable and reconfigurable optical vortices via photopatterning of liquid crystals. Adv. Mater. 26, 1590 (2014).CrossRefGoogle ScholarPubMed
17Iqbal, D. and Samiullah, M.H.: Photo-responsive shape-memory and shape-changing liquid-crystal polymer networks. Materials 6, 116 (2013).CrossRefGoogle ScholarPubMed
18de Haan, L.T., Sánchez-Somolinos, C., Bastiaansen, C.M., Schenning, A.P., and Broer, D.J.: Engineering of complex order and the macroscopic deformation of liquid crystal polymer networks. Angew. Chem. 124, 12637 (2012).CrossRefGoogle Scholar
19Peng, C., Turiv, T., Zhang, R., Guo, Y., Shiyanovskii, S.V., Wei, Q.H., de Pablo, J., and Lavrentovich, O.D.: Controlling placement of nonspherical (boomerang) colloids in nematic cells with photopatterned director. J. Phys.: Condens. Matter 29, 014005 (2017).Google ScholarPubMed
20Peng, C., Guo, Y., Turiv, T., Jiang, M., Wei, Q.H., and Lavrentovich, O.D.: Patterning of lyotropic chromonic liquid crystals by photoalignment with photonic metamasks. Adv. Mater. 29, 1606112 (2017).CrossRefGoogle ScholarPubMed
21Peng, C., Turiv, T., Guo, Y., Wei, Q.-H., and Lavrentovich, O.D.: Command of active matter by topological defects and patterns. Science 354, 882 (2016).CrossRefGoogle ScholarPubMed
22van der Asdonk, P., Hendrikse, H.C., Fernandez-Castano Romera, M., Voerman, D., Ramakers, B.E.I., Löwik, D.W.P.M., Sijbesma, R.P., and Kouwer, P.H.J.: Patterning of soft matter across multiple length scales. Adv. Funct. Mater. 26, 2609 (2016).CrossRefGoogle Scholar
23Peng, C., Guo, Y., Conklin, C., Viñals, J., Shiyanovskii, S.V., Wei, Q.-H., and Lavrentovich, O.D.: Liquid crystals with patterned molecular orientation as an electrolytic active medium. Phys. Rev. E 92, 052502 (2015).CrossRefGoogle ScholarPubMed
24Gao, K., Cheng, H.H., Bhowmik, A.K., and Bos, P.J.: Thin-film Pancharatnam lens with low f-number and high quality. Opt. Express 23, 26086 (2015).CrossRefGoogle ScholarPubMed
25Niv, A., Biener, G., Kleiner, V., and Hasman, E.: Propagation-invariant vectorial Bessel beams obtained by use of quantized Pancharatnam–Berry phase optical elements. Opt. Lett. 29, 238 (2004).CrossRefGoogle ScholarPubMed