Journal of Engineering and Applied Sciences

Year: 2017
Volume: 12
Issue: 5 SI
Page No. 6928 - 6933

Environmental Friendly Flow Focusing Microfluidic Device and Pump System for Microencapsulation of 3D Cells

Authors : Chin Fhong Soon, Hiung Yin Yap, Mohd Khairul Ahmad, Mohd Zainizan Sahdan, Kian Sek Tee, Sayed Ali Khagani and Mansour Youseffi

References

Choi, S.W., Y. Zhang and Y. Xia, 2009. Fabrication of microbeads with a controllable hollow interior and porous wall using a capillary fluidic device. Adv. Funct. Mater., 19: 2943-2949.
CrossRef  |  Direct Link  |  

Friend, J. and L. Yeo, 2010. Fabrication of microfluidic devices using polydimethylsiloxane. Biomicrofluidics, Vol. 4,

Hung, L.H. and A.P. Lee, 2007. Microfluidic devices for the synthesis of nanoparticles and biomaterials. J. Med. Biol. Eng., 27: 1-6.
Direct Link  |  

Jiang, K., P.C. Thomas, S.P. Forry, D.D.L. Voe and S.R. Raghavan, 2012. Microfluidic synthesis of monodisperse PDMS microbeads as discrete oxygen sensors. Soft Matter, 8: 923-926.
CrossRef  |  Direct Link  |  

Johnston, I.D., M.M.B. Donnell, C.K.L. Tan, M.D.K. Cluskey and M.J. Davies et al., 2014. Dean flow focusing and separation of small microspheres within a narrow size range. Microfluid. Nanofluid., 17: 509-518.
CrossRef  |  Direct Link  |  

Kim, K.K. and D.W. Pack, 2006. Microspheres for Drug Delivery. In: BioMEMS and Biomedical Nanotechnology, Ferrari, M., P.L. Abraham and L.L. James (Eds.). Springer, Berlin, Germany, ISBN:978-0-387-25563-7, pp: 19-50.

Lyu, S.R. W.J. Chen and W.H. Hsieh, 2014. Measuring transport properties of cell membranes by a PDMS microfluidic device with controllability over changing rate of extracellular solution. Sens. Actuators B. Chem., 197: 28-34.
Direct Link  |  

Moon, B.U., N. Abbasi, S.G. Jones, D.K. Hwang and S.S. Tsai, 2016. Water-in-water droplets by passive microfluidic flow focusing. Anal. Chem., 88: 3982-3989.
CrossRef  |  Direct Link  |  

Pakzad, H., I. Alemzadeh and A. Kazemii, 2013. Encapsulation of peppermint oil with arabic gum-gelatin by complex coacervation method. Int. J. Eng. Trans. B. Appl., 26: 807-814.
Direct Link  |  

Santos, J.M., S.P. Camoes, E. Filipe, M. Cipriano and R.N. Barcia et al., 2015. Three-dimensional spheroid cell culture of umbilical cord tissue-derived mesenchymal stromal cells leads to enhanced paracrine induction of wound healing. Stem Cell Res. Therapy, 6: 1-90.
Direct Link  |  

Soon, C.F., W.I.W. Berends, R.F. Nayan, N. Basri and H. Tee et al., 2014. Biophysical characteristics of cells cultured on cholesteryl ester liquid crystals. Micron, 56: 73-79.
Direct Link  |  

Sun, J. and H. Tan, 2013. Alginate-based biomaterials for regenerative medicine applications. Mater., 6: 1285-1309.
CrossRef  |  Direct Link  |  

Vahabzadeh, F. and A. Najafi, 2004. Microencapsulation of orange oil by complex coacervation and its release behavior reasearch note. Int. J. Eng. Trans. B. Appl., 19: 333-342.
Direct Link  |  

Winkleman, A., B.D. Gates, M.L.S. Carty and G.M. Whitesides, 2005. Directed self assembly of spherical particles on patterned electrodes by an applied electric field. Adv. Mater., 17: 1507-1511.
CrossRef  |  Direct Link  |  

Wong, S.C., C.F. Soon, W.Y. Leong and K.S. Tee, 2016. Flicking technique for microencapsulation of cells in calcium alginate leading to the microtissue formation. J. Microencapsulation, 33: 162-171.
Direct Link  |  

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