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 *[[https://www.biorxiv.org/content/10.1101/2021.02.09.430466v1.full|Supracellular organization confers directionality and mechanical potency to migrating pairs of cardiopharyngeal progenitor cells]] - Yelena Y. Bernadskaya, Haicen Yue, Calina Copos, Lionel Christiaen, Alex Mogilner. BioRxiv. doi: https://doi.org/10.1101/2021.02.09.430466

 *[[https://www-sciencedirect-com.proxyiub.uits.iu.edu/science/article/pii/S0022519320303428|A Cellular Potts energy-based approach to analyse the influence of the surface topography on single cell motility]] - Thenard T, Catapano A, Mesnard M, Allena R. J Theor Biol. 2021 Jan 21;509:110487. doi: 10.1016/j.jtbi.2020.110487. Epub 2020 Sep 16. PMID: 32949589.

 *[[https://www.biorxiv.org/content/10.1101/2020.01.14.905711v1|Computational Modelling of Nephron Progenitor Cell Movement and Aggregation during Kidney Organogenesis]] - Pauli Tikka, Moritz Mercker, Ilya Skovorodkin, Ulla Saarela, Seppo Vainio, Veli-Pekka Ronkainen, James P. Sluka, James A. Glazier, Anna Marciniak-Czochra, Franz Schaefer. BioRxiv. doi: https://doi.org/10.1101/2020.01.14.905711

 *[[https://doi.org/10.1590/1806-9126-RBEF-2020-0400|Fenômenos estocásticos em migração celular: teoria, experimentos e simulações (Stochastic phenomena in single cell migration: theory, experiments, and simulations)]] - Rita M.C. de Almeida. Seção Especial • Rev. Bras. Ensino Fís. 43 (Suppl 1). 2021.

 *[[https://pubs.acs.org/doi/abs/10.1021/acscentsci.0c00601|Heterogeneity in 2,6-Linked Sialic Acids Potentiates Invasion of Breast Cancer Epithelia]] - Pally D, Pramanik D, Hussain S, Verma S, Srinivas A, Kumar RV, Everest-Dass A, Bhat R. ACS Cent Sci. 2021 Jan 27;7(1):110-125. doi: 10.1021/acscentsci.0c00601. Epub 2021 Jan 4. PMID: 33532574; PMCID: PMC7844859.

 *[[https://www.biorxiv.org/content/10.1101/2021.01.27.428527v1.full|The environment topography alters the transition from single-cell populations to multicellular structures in Myxococcus xanthus]] - Karla C. Hernández Ramos, Edna Rodríguez-Sánchez, Juan Antonio Arias del Angel, Alejandro V. Arzola, Mariana Benítez, Ana E. Escalante, Alessio Franci, Giovanni Volpe, Natsuko Rivera-Yoshida. !BioRxiv. doi: https://doi.org/10.1101/2021.01.27.428527

 * A useful review of methods, including CC3D: [[https://link.springer.com/article/10.1007/s11831-021-09554-1|Computational Models and Simulations of Cancer Metastasis]] - Anvari, S., Nambiar, S., Pang, J. et al. Arch Computat Methods Eng (2021). https://doi-org.proxyiub.uits.iu.edu/10.1007/s11831-021-09554-1.

 *[[https://link.springer.com/article/10.1007/s00262-020-02790-7|Run for your life: an integrated virtual tissue platform for incorporating exercise oncology into immunotherapy]] - Serrano JA, Hagar A. Cancer Immunol Immunother. 2021 Jul;70(7):1951-1964. doi: 10.1007/s00262-020-02790-7. Epub 2021 Jan 8. PMID: 33416943.

 *[[https://link.springer.com/chapter/10.1007/978-3-030-58688-1_2|Position of the Kenzan Method in the Space-Time of Tissue Engineering]] - Moldovan N.I. (2021) In: Nakayama K. (eds) Kenzan Method for Scaffold-Free Biofabrication. Springer, Cham. https://doi-org.proxyiub.uits.iu.edu/10.1007/978-3-030-58688-1_2
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 * [[https://academic-oup-com.proxyiub.uits.iu.edu/biolreprod/article/97/3/365/4082285|Cell-based computational model of early ovarian development in mice]] - Wear HM, Eriksson A, Yao HH, Watanabe KH. Biol Reprod. 2017 Sep 1;97(3):365-377. doi: 10.1093/biolre/iox089. PMID: 29088396; PMCID: PMC6231088.

This page contains selected publications which were done using CompuCell3D. While we try to keep this page updated some of the publications might be missing from it. If you want your CompuCell3D-based publication to be displayed here, please e-mail us ( jsluka@iu.edu )

For list of Ph.D. and Master theses completed using CC3D please click here.

How to cite CompuCell3D

Multi-Scale Modeling of Tissues Using CompuCell3DM. Swat, Gilberto L. Thomas, Julio M. Belmonte, A. Shirinifard, D. Hmeljak, J. A. Glazier, Computational Methods in Cell Biology, Methods in Cell Biology 110: 325-366 (2012)

Publications

2021

2020

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2016

2015

2014

2013

2012

2011

2010

2009

2008

2007

  • From Genes to Organisms Via the Cell: A Problem-Solving Environment for Multicellular Development – Trevor Cickovski, Kedar Aras, Maciej Swat, Roeland M. H. Merks, Tilmann Glimm, H. George E. Hentschel, Mark S. Alber, James A. Glazier, Stuart A. Newman, J. A. Izaguirre, Computing in Science and Engineering 9: 50-60 (2007).

  • Adhesion Between Cells, Diffusion of Growth Factors, and Elasticity of the AER Produce the Paddle Shape of the Chick Limb – Nikodem J. Popławski, Maciej Swat, J. Scott Gens, James A. Glazier, Physica A 373: 521-532 (2007).

  • A Brief History of the Glazier-Graner-Hogeweg Model. Glazier J.A., Balter A., Popławski N.J. (2007) Magnetization to Morphogenesis: In: Anderson A.R.A., Chaplain M.A.J., Rejniak K.A. (eds) Single-Cell-Based Models in Biology and Medicine. Mathematics and Biosciences in Interaction. Birkhäuser Basel

  • The Glazier-Graner-Hogeweg Model: Extensions, Future Directions, and Opportunities for Further Study. Balter A., Merks R.M.H., Popławski N.J., Swat M., Glazier J.A. (2007) In: Anderson A.R.A., Chaplain M.A.J., Rejniak K.A. (eds) Single-Cell-Based Models in Biology and Medicine. Mathematics and Biosciences in Interaction. Birkhäuser Basel.

  • The Cellular Potts Model and Biophysical Properties of Cells, Tissues and Morphogenesis. Marée A.F.M., Grieneisen V.A., Hogeweg P. (2007) In: Anderson A.R.A., Chaplain M.A.J., Rejniak K.A. (eds) Single-Cell-Based Models in Biology and Medicine. Mathematics and Biosciences in Interaction. Birkhäuser Basel.

2005

2004

1993

  • Simulation of the differential adhesion driven rearrangement of biological cells. Glazier JA, Graner F. Phys Rev E Stat Phys Plasmas Fluids Relat Interdiscip Topics. 1993 Mar;47(3):2128-2154.

1992

  • Simulation of biological cell sorting using a two-dimensional extended Potts model. Graner F, Glazier JA. Phys Rev Lett. 1992 Sep 28;69(13):2013-2016.

CompuCell3D: Publications (last edited 2026-04-20 20:26:35 by jpSluka)