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Formation of cell spheroids using Standing Surface Acoustic Wave (SSAW)


            16.   Yuasa C, Tomita Y, Shono M, et al., 1993, Importance of   cells  and  chondrocytes  for  the  treatment  of  cartilage
                 cell  aggregation  for  expression  of  liver  functions  and   defects of the knee. Eur Cell Mater, 22: 275–290. http://
                 regeneration  demonstrated  with  primary  cultured   dx.doi.org/https://doi.org/10.22203/ecm.v022a21
                 hepatocytes. J Cell Physiol, 156(3):522–530. http://dx.do   27   Timmins N E, Dietmair S, Nielsen L K, 2004, Hanging-
                 i.org/10.1002/jcp.1041560311                      drop  multicellular  spheroids  as  a  model  of  tumour
            17.   Takabatake  H,  Koide  N,  Tsuji  T,  1991,  Encapsulated   angiogenesis.  Angiogenesis,  7(2):  97–103.  http://dx.doi.
                 multicellular  spheroids  of  rat  hepatocytes  produce   org/10.1007/s10456–004–8911–7
                 albumin  and  urea  in  a  spouted  bed  circulating  culture   28.   Albrecht D R, Underhill G H, Wassermann T B, et al.,
                 system. Artif Organs, 15(6):474–80.               2006,  Probing  the  role  of  multicellular  organization  in
            18.   Landry J, Bernier D, Ouellet C, et al., 1985, Spheroidal   three-dimensional  microenvironments.  Nat  Methods,
                 aggregate  culture  of  rat  liver  cells:  Histotypic   3(5):369–375. http://dx.doi.org/10.1038/nmeth873
                 reorganization, biomatrix deposition, and maintenance of   29.   Souza  G  R,  Molina  J  R,  Raphael  R  M,  et  al.,  2010,
                 functional activities.  J Cell Biol, 101(3): 914–923. http://   Three-dimensional tissue culture based on magnetic cell
                 dx.doi.org/https://doi.org/10.1083/jcb.101.3.914   levitation. Nat Nanotechnol, 5(4): 291–296, http://dx.doi.
            19.   Edmondson  R,  Broglie  J  J,  Adcock  A  F,  et  al.,  2014,   org/10.1038/nnano.2010.23
                 Three-dimensional  cell  culture  systems  and  their   30.   Ingram M, Techy G B, Saroufeem R, et al., 1997, Three-
                 applications in drug discovery and cell-based biosensors.   dimensional growth patterns of various human tumor cell
                 Assay  Drug  Dev  technol,  12(4):  207–218.  http://dx.doi.   lines in simulated microgravity of a NASA bioreactor. In
                 org/10.1089/adt.2014.573                          Vitro Cell  Dev Biol Anim, 33(6): 459–466. http://dx.doi.
            20.   Imamura  Y,  Mukohara  T,  Shimono  Y,  et  al.,  2015,   org/10.1007/s11626–997–0064–8
                 Comparison of 2D-and 3D-culture models as drug-testing   31.   Napolitano  A  P,  Chai  P,  Dean  D  M,  et  al.,  2007,
                 platforms in breast cancer. Oncol Rep, 33(4): 1837–1843.    Dynamics  of  the  self-assembly  of  complex  cellular
                 http://dx.doi.org/10.3892/or.2015.3767            aggregates  on  micromolded  nonadhesive  hydrogels.
                                                                   Tissue Eng, 13(8): 2087–2094. http://dx.doi.org/10.1089/
            21.  Xu J S, Ma M W, Purcell W M, 2003, Characterisation of   ten.2006.0190
                 some  cytotoxic  endpoints  using  rat  liver  and  HepG2   32.   Semino  C  E,  Merok  J  R,  Crane  G  G,  et  al.,  2003,
                 spheroids  as  in  vitro  models  and  their  application  in   Functional  differentiation  of  hepatocyte-like  spheroid
                 hepatotoxicity  studies.  I.  Glucose  metabolism  and   structures  from  putative  liver  progenitor  cells  in  three-
                 enzyme  release  as  cytotoxic  markers.  Toxicol  Appl   dimensional  peptide  scaffolds.  Differentiation,  71(4–5):
                 Pharmacol,  189(2):  112–119.  http://dx.doi.org/10.1016/   262–270.  http://dx.doi.org/10.1046/j.1432–0436.2003.71
                 S0041–008x(03)00089–9                             04503.x
            22.  Mandal  B  B,  Kundu  S  C,  2009,  Cell  proliferation  and   33.   Ng W L, Lee J M, Yeong W Y, et al., 2017, Microvalve-
                 migration  in  silk  fibroin  3D  scaffolds.  Biomaterials,   based  bioprinting–Process,  bio-inks  and  applications.
                 30(15):  2956–2965.  http://dx.doi.org/10.1016/j.biomate-  Biomater  Sci,5(4):  632–647.  http://dx.doi.org/10.1039/
                 rials.2009.02.006                                 c6bm00861e
            23.  Young  E  W,  Beebe  D  J,  2010,  Fundamentals  of   34.   Faulkner-Jones A, Greenhough S, King J A, et al., 2013,
                 microfluidic cell culture in controlled microenvironments.   Development  of  a  valve-based  cell  printer  for  the
                 Chem  Soc  Rev,  39(3):  1036–1048.  http://dx.doi.org/10.   formation  of  human  embryonic  stem  cell  spheroid
                 1039/b909900j                                     aggregates.  Biofabrication,  5(1):  015013.  http://dx.doi.
            24.  Norotte  C,  Marga  F  S,  Niklason  L  E,  et  al.,  2009,   org/10.1088/1758–5082/5/1/015013
                 Scaffold-free   vascular   tissue   engineering   using   35.   Bazou  D,  Kearney  R,  Mansergh  F,  et  al.,  2011,  Gene
                 bioprinting.  Biomaterials,  30(30):  5910–5917.  http://dx.   expression  analysis  of  mouse  embryonic  stem  cells
                 doi.org/10.1016/j.biomaterials.2009.06.034        following levitation in an ultrasound standing wave trap.
            25.  Ozbolat  I  T,  Yu  Y,  2013,  Bioprinting  toward  organ   Ultrasound Med Biol, 37(2): 321–330. http://dx.doi.org/
                 fabrication:  Challenges  and  future  trends.  IEEE  Trans   10.1016/j.ultrasmedbio.2010.10.019
                 Biomed  Eng,  60(3):  691–699.  http://dx.doi.org/10.1109/   36   Chen K, Wu M, Guo F, et al., 2016, Rapid formation of
                 TBME. 2013.2243912                                size-controllable multicellular spheroids via 3D acoustic
            26.   Lee J, Sato M, Kim H,  et  al., 2011, Transplantation of   tweezers.  Lab  Chip,  16(14):  2636–2643.  http://dx.doi.
                 scaffold-free  spheroids  composed  of  synovium-derived   org/10.1039/c6lc00444j


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