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Chitosan microfiber fabrication using a microfluidic chip and its application to cell cultures

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Abstract

In this study, a poly-methyl-methacrylate (PMMA) microfluidic chip with a 45° cross-junction microchannel is fabricated using a CO2 laser machine to generate chitosan microfibers. Chitosan solution and sodium tripolyphosphate (STPP) solution were injected into the cross-junction microchannel of the microfluidic chip. The laminar flow of the chitosan solution was generated by hydrodynamic focusing. The diameter of laminar flow, which ranged from 30 to 50 μm, was controlled by changing the ratio between chitosan solution and STPP solution flow rates in the PMMA microfluidic chip. The laminar flow of the chitosan solution was converted into chitosan microfibers with STPP solution via the cross-linking reaction; the diameter of chitosan microfibers was in the range of 50–200 μm. The chitosan microfibers were then coated with collagen for cell cultivation. The results show that the chitosan microfibers provide good growth conditions for cells. They could be used as a scaffold for cell cultures in tissue engineering applications. This novel method has advantages of ease of fabrication, simple and low-cost process.

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References

  • De Geest BG, Urbanski JP, Thorsen T, Demeester J, De Smedt SC (2005) Synthesis of monodisperse biodegradable microgels in microfluidic devices. Langmuir 21:10275–10279

    Article  Google Scholar 

  • Freier T, Montenegroc R, Shan Koh H, Shoichet MS (2005) Chitin-based tubes for tissue engineering in the nervous system. Biomaterials 26:4624–4632

    Article  Google Scholar 

  • Huang KS, Lai TH, Lin YC (2006) Manipulating the generation of Ca-alginate microspheres using microfluidic channels as a carrier of gold nanoparticles. Lab Chip 6:954–957

    Article  Google Scholar 

  • Huang KS, Lai TH, Lin YC (2007) Using a microfluidic chip and internal gelation reaction for monodisperse calcium alginate microparticles generation. Front Biosci 12:3061–3067

    Article  Google Scholar 

  • Jeong WJ, Kim JY, Choo J, Lee EK, Han CS, Beebe DJ, Seong GH, Lee SH (2005) Continuous fabrication of biocatalyst immobilized microparticles using photopolymerization and immiscible liquids in microfluidic systems. Langmuir 21:3738–3741

    Article  Google Scholar 

  • Khor E, Lim LY (2003) Implantable applications of chitin and chitosan. Biomaterials 24:2339–2349

    Article  Google Scholar 

  • Kim JW, Utada AS, Fernandez-Nieves A, Hu Z, Weitz DA (2007) Fabrication of monodisperse gel shells and functional microgels in microfluidic devices. Angew Chem Int Ed 46:1819–1822

    Article  Google Scholar 

  • Kobayashi I, Mukataka S, Nakajima M (2005) Novel asymmetric through-hole array microfabricated on a silicon plate for formulating monodisperse emulsions. Langmuir 21:7629–7632

    Article  Google Scholar 

  • Leea ST, Mia FL, Shena YJ, Shyub SS (2002) Equilibrium and kinetic studies of copper (II) ion uptake by chitosan–tripolyphosphate chelating resin. Polymer 42:1879–1892

    Article  Google Scholar 

  • Liu XD, Bao DC, Xue WM, Xiong Y, Yu WT, Yu XJ, Ma XJ, Yuan Q (2003) Preparation of uniform calcium alginate gel beads by membrane emulsification coupled with internal gelation. J Appl Polym Sci 87:848–852

    Article  Google Scholar 

  • Madihally SV, Matthew HWT (1999) Porous chitosan scaffolds for tissue engineering. Biomaterials 20:1133–1142

    Article  Google Scholar 

  • Mi FL, Shyu SS, Lee TS, Wong TB (1999) Kinetic study of chitosan–tripolyphosphate complex reaction and acid-resistive properties of the chitosan–tripolyphosphate gel beads prepared by in-liquid curing method. J Polym Sci B 37:1551–1564

    Article  Google Scholar 

  • Mi FL, Sung HW, Shyu SS (2002) Drug release from chitosan–alginate complex beads reinforced by a naturally occurring cross-linking agent. Carbohydr Polym 48:61–72

    Article  Google Scholar 

  • Nie ZH, Xu SQ, Seo MS, Lewis PC, Kumacheva E (2005) Polymer particles with various shapes and morphologies produced in continuous microfluidic reactor. J Am Chem Soc 127:8058–8063

    Article  Google Scholar 

  • Oh HJ, Kim SH, Baek JY, Seong GH, Lee SH (2006) Hydrodynamic micro-encapsulation of aqueous fluids and cells via ‘on the fly’ photopolymerization. J Micromech Microeng 16:285–291

    Article  Google Scholar 

  • Onishi H, Machida Y (1999) Biodegradation and distribution of water-soluble chitosan in mice. Biomaterials 20:175–182

    Article  Google Scholar 

  • Peng G, Yinghui Z, Jianchun L, Yandao G, Nanming Z, Xiufang Z (2000) Studies on nerve cell affinity of chitosan-derived materials. J Biomed Mater Res 52:285–295

    Article  Google Scholar 

  • Quevedo E, Steinbacher J, McQuade DTJ (2005) Interfacial polymerization within a simplified microfluidic device: capturing capsules. J Am Chem Soc 127:10498–10499

    Article  Google Scholar 

  • Rao SB, Sharma CP (1997) Use of chitosan as a biomaterial: studies on its safety and hemostatic potential. J Biomed Mater Res 34:21–28

    Article  Google Scholar 

  • Ribud MV, Hardikar AA, Bhat SV, Bhond RR (2000) pH-sensitive freeze-dried chitosan-polyvinyl pyrrolidone hydrogels as controlled release system for antibiotic delivery. J Control Release 68:23–30

    Article  Google Scholar 

  • Roy K, Mao HQ, Huang SK, Leong KW (1999) Oral gene delivery with chitosan-DNA nanoparticles generates immunologic protection in a murine model of peanut allergy. Nat Med 5:387–391

    Article  Google Scholar 

  • Shiraishi S, Imai T, Otagiri M (1993) Controlled release of indomethacin by chitosan–polyelectrolyte complex: optimization and in vivo/in vitro evaluation. J Control Release 25:217–225

    Article  Google Scholar 

  • Sugiura S, Oda T, Izumida Y, Aoyagi Y, Satake M, Ochiai A, Ohkohchi N, Nakajima M (2005) Size control of calcium alginate beads containing living cells using micro-nozzle array. Biomaterials 26:3327–3331

    Article  Google Scholar 

  • Yeh CH, Lin YC (2009) Using a cross-flow microfluidic chip for monodisperse UV-photopolymerized microparticles. Microfluid Nanofluidics 6:277–283

    Article  Google Scholar 

  • Yuan Y, Zhang P, Yang Y, Wang X, Gu X (2004) The interaction of Schwann cells with chitosan membranes and fibers in vitro. Biomaterials 25:4273–4278

    Article  Google Scholar 

  • Zhang H, Tumarkin E, Peerani R, Nie Z, Sullan RMA, Walker GC, Kumacheva E (2006) Microfluidic production of biopolymer microcapsules with controlled morphology. J Am Chem Soc 128:12205–12210

    Article  Google Scholar 

  • Zhang H, Tumarkin E, Sullan RMA, Walker GC, Kumacheva E (2007) Exploring microfluidic routes to microgels of biological polymers. Macromol Rapid Commun 28:527–538

    Article  Google Scholar 

  • Zourob M, Mohr S, Mayes AG, Macaskill A, Pe’rez-Moral N, Fielden PR, Goddard NJ (2006) A micro-reactor for preparing uniform molecularly imprinted polymer beads. Lab Chip 6:296–301

    Article  Google Scholar 

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Acknowledgments

The authors would like to thank the Center for Micro/Nano Technology, National Cheng Kung University, Tainan, for access to equipment and for technical support. We would also like to thank Hong-Ping Lin Ph.D., Department of Chemistry, National Cheng Kung University, Tainan, for access to SEM and technical support. Funding from the National Science Council of Taiwan, R.O.C., under contract NSC 97-2221-E-006-222-MY3 is gratefully acknowledged.

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Correspondence to Yu-Cheng Lin.

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Yeh, CH., Lin, PW. & Lin, YC. Chitosan microfiber fabrication using a microfluidic chip and its application to cell cultures. Microfluid Nanofluid 8, 115–121 (2010). https://doi.org/10.1007/s10404-009-0485-7

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  • DOI: https://doi.org/10.1007/s10404-009-0485-7

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