References
205
Cohen I, Brenner MP, Eggers J, and Nagel SR, 1999. Two Fluid Drop Snap-Off Problem: Experiments and Theory, Phys. Rev. Lett. 83: 1147–1150
Colin R, Drescher K, and Sourjik V, 2019. Chemotactic behaviour of Escherichia coli at high cell
density, Nat. Commun. 10: 5329
Coussy O, 2004. Poromechanics, 2nd ed. Chichester, England; Wiley, Hoboken NJ
Cox RG, 1970. The motion of long slender bodies in a viscous fluid, J. Fluid Mech. 44: 791–810
Crick F, 1970. Diffusion in Embryogenesis, Nature 225: 420–422
Czajkowski M, Sussman DM, Marchetti MC, and Manning ML, 2019. Glassy dynamics in models
of confluent tissue with mitosis and apoptosis, Soft Matter 15: 9133–9149
Dahmann C, Oates AC, and Brand M, 2011. Boundary formation and maintenance in tissue development, Nat. Rev. Genetics 12: 43–55
Danuser G, Allard J, and Mogilner A, 2013. Mathematical Modeling of Eukaryotic Cell Migration:
Insights Beyond Experiments, Annu. Rev. Cell and Develop. Biol. 29: 501–528
Darnton NC and Berg HC, 2007. Force-Extension Measurements on Bacterial Flagella: Triggering
Polymorphic Transformations, Biophys. J. 92: 2230–2236
Das R, Kumar M, and Mishra S, 2017. Order-disorder transition in active nematic: A lattice model
study, Sci. Rep. 7: 7080
Das S, Garg A, Campbell AI, Howse J, Sen A, Velegol D, Golestanian R, and Ebbens SJ, 2015.
Boundaries can steer active Janus spheres, Nat. Commun. 6: 8999
Dearden PK, 2019. Hourglass or Twisted Ribbon? in Evo-Devo: Non-model Species in Cell and
Developmental Biology, eds Tworzydlo W and Bilinski SM, Springer, Cham
Deforet M, Hakim V, Yevick HG, Duclos G, and Silberzan P, 2013. Emergence of collective modes
and tri-dimensional structures from epithelial confinement, Nat. Commun. 5: 3747
de Gennes PG, 1975. One type of nematic polymers, C. R. Acad. Sci. Ser. B 281, 101–103
de Gennes PG and Prost J, 1995. The Physics of Liquid Crystals, Oxford University Press
Dell’Arciprete D, Blow ML, Brown AT, Farrell FDC, Lintuvuori JS, McVey AF, Marenduzzo D,
and Poon WCK, 2018. A growing bacterial colony in two dimensions as an active nematic, Nat.
Commun. 9: 4190
Dequéant M-L and Pourquié O, 2008. Segmental patterning of the vertebrate embryonic axis, Nat.
Rev. Genetics 9: 370–381
Dembo M and Harlow F, 1986. Cell motion, contractile networks, and the physics of interpenetrating reactive flow. Biophys. J. 50: 109–121
Dickinson RB and Purich DL, 2002. Clamped-Filament Elongation Model for Actin-Based Motors,
Biophys. J. 82: 605–617
Dietrich K, Renggli D, Zanini M, Volpe G, Buttinoni I, and Isa L, 2017. Two-dimensional nature
of the active Brownian motion of catalytic microswimmers at solid and liquid interfaces, New J.
Phys. 19: 065008
Dogterom M and Koenderink GH, 2019, Actin-microtubule crosstalk in cell biology, Nat. Rev.
Molec. Cell Biol. 20: 39–54
Deglincerti A, Croft GF, Pietila LN, Zernicka-Goetz M, Siggia ED, and Ali H. Brivanlou AH,
2016. Self-organization of the in vitro attached human embryo, Nature 533: 251–254
Doostmohammadi A, Ignés-Mullol J, Yeomans JM, and Sagués F, 2018. Active Nematics, Nat.
Commun. 9: 3246
205
Cohen I, Brenner MP, Eggers J, and Nagel SR, 1999. Two Fluid Drop Snap-Off Problem: Experiments and Theory, Phys. Rev. Lett. 83: 1147–1150
Colin R, Drescher K, and Sourjik V, 2019. Chemotactic behaviour of Escherichia coli at high cell
density, Nat. Commun. 10: 5329
Coussy O, 2004. Poromechanics, 2nd ed. Chichester, England; Wiley, Hoboken NJ
Cox RG, 1970. The motion of long slender bodies in a viscous fluid, J. Fluid Mech. 44: 791–810
Crick F, 1970. Diffusion in Embryogenesis, Nature 225: 420–422
Czajkowski M, Sussman DM, Marchetti MC, and Manning ML, 2019. Glassy dynamics in models
of confluent tissue with mitosis and apoptosis, Soft Matter 15: 9133–9149
Dahmann C, Oates AC, and Brand M, 2011. Boundary formation and maintenance in tissue development, Nat. Rev. Genetics 12: 43–55
Danuser G, Allard J, and Mogilner A, 2013. Mathematical Modeling of Eukaryotic Cell Migration:
Insights Beyond Experiments, Annu. Rev. Cell and Develop. Biol. 29: 501–528
Darnton NC and Berg HC, 2007. Force-Extension Measurements on Bacterial Flagella: Triggering
Polymorphic Transformations, Biophys. J. 92: 2230–2236
Das R, Kumar M, and Mishra S, 2017. Order-disorder transition in active nematic: A lattice model
study, Sci. Rep. 7: 7080
Das S, Garg A, Campbell AI, Howse J, Sen A, Velegol D, Golestanian R, and Ebbens SJ, 2015.
Boundaries can steer active Janus spheres, Nat. Commun. 6: 8999
Dearden PK, 2019. Hourglass or Twisted Ribbon? in Evo-Devo: Non-model Species in Cell and
Developmental Biology, eds Tworzydlo W and Bilinski SM, Springer, Cham
Deforet M, Hakim V, Yevick HG, Duclos G, and Silberzan P, 2013. Emergence of collective modes
and tri-dimensional structures from epithelial confinement, Nat. Commun. 5: 3747
de Gennes PG, 1975. One type of nematic polymers, C. R. Acad. Sci. Ser. B 281, 101–103
de Gennes PG and Prost J, 1995. The Physics of Liquid Crystals, Oxford University Press
Dell’Arciprete D, Blow ML, Brown AT, Farrell FDC, Lintuvuori JS, McVey AF, Marenduzzo D,
and Poon WCK, 2018. A growing bacterial colony in two dimensions as an active nematic, Nat.
Commun. 9: 4190
Dequéant M-L and Pourquié O, 2008. Segmental patterning of the vertebrate embryonic axis, Nat.
Rev. Genetics 9: 370–381
Dembo M and Harlow F, 1986. Cell motion, contractile networks, and the physics of interpenetrating reactive flow. Biophys. J. 50: 109–121
Dickinson RB and Purich DL, 2002. Clamped-Filament Elongation Model for Actin-Based Motors,
Biophys. J. 82: 605–617
Dietrich K, Renggli D, Zanini M, Volpe G, Buttinoni I, and Isa L, 2017. Two-dimensional nature
of the active Brownian motion of catalytic microswimmers at solid and liquid interfaces, New J.
Phys. 19: 065008
Dogterom M and Koenderink GH, 2019, Actin-microtubule crosstalk in cell biology, Nat. Rev.
Molec. Cell Biol. 20: 39–54
Deglincerti A, Croft GF, Pietila LN, Zernicka-Goetz M, Siggia ED, and Ali H. Brivanlou AH,
2016. Self-organization of the in vitro attached human embryo, Nature 533: 251–254
Doostmohammadi A, Ignés-Mullol J, Yeomans JM, and Sagués F, 2018. Active Nematics, Nat.
Commun. 9: 3246
