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active particle near a planar wall: from reflection to sliding and hovering, Soft Matter 11: 6613–6632
van Oosten CL, Bastiaansen CWM, and DJ, 2009. Printed artificial cilia from liquid-crystal network
actuators modularly driven by light, Nat. Mater. 8: 677–682
Vantomme G, Gelebart AH, Broer DJ, and Meijer EW, 2017. A four-blade light-driven plastic mill
based on hydrazone liquid- crystal networks, Tetrahedron, 73: 4963–4967
Varma A, Montenegro-Johnson TB, and Michelin S, 2018. Clustering-induced self-propulsion of
isotropic autophoretic particles, Soft Matter 14: 7155–7173
Vicsek T, Czirok A, Ben-Jacob E, Cohen I, Shochet O, 1995. Novel type of phase transition in a
system of self-driven particles, Phys. Rev. Lett. 75: 1226–1229
Viktorinová I, Pismen LM, Aigouy B, and Dahmann C, 2011. Modelling planar polarity of epithelia: the role of signal relay in collective cell polarization, J. R. Soc. Interface 8: 1059–1063
Vilfan A, 2012. Generic flow profiles induced by a beating cilium, Eur. Phys. J. E 35: 72
Vishwakarma M, Di Russo J, Probst D, Schwarz US, Das T, and Spatz U, 2018. Mechanical interactions among followers determine the emergence of leaders in migrating epithelial cell collectives,
Nat. Commun. 9: 3469
Vizsnyiczai G, Frangipane G, Maggi C, Saglimbeni F, Bianchi S, and Di Leonardo R, 2017. Light
controlled 3D micromotors powered by bacteria, Nat. Commun. 8: 15974
Voas MG and Rebay I, 2004. Signal integration during development: Insights from the Drosophila
eye, Developmental Dynamics 229: 162–175
Vogel R and Stark H, 2010. Force-extension curves of bacterial flagella, Eur. Phys. J. E 33: 259–271
Vogel R and Stark H, 2012. Motor-driven bacterial flagella and buckling instabilities, Eur. Phys. J.
E 35: 15
Vogel SK, Petrasek Z, Heinemann F, and Schwille P, 2013. Myosin motors fragment and compact
membrane-bound actin filaments, eLife 2: e00116
Vollmer J, Casares F, and Iber D, 2017. Growth and size control during development, Open Biol.
7: 170190
von Nägeli C, 1884. Mechanisch-physiologische Theorie der Abstammungslehre, Verlag Oldenbourg, München
Wada H and Matsumoto D, 2018. Twisting Growth in Plant Roots, in Plant Biomechanics, eds.
Geitmann A and Gril J, pp. 127–140, Springer, Cham
Walker M, Rizzuto P, Godin M, and Pelling AE, 2020. Structural and mechanical remodeling of
the cytoskeleton maintains tensional homeostasis in 3D microtissues under acute dynamic stretch,
Sci. Rep. 10: 7696
Wang Q, Feng JJ, and Pismen LM, 2012. A Cell-Level Biomechanical Model of Drosophila Dorsal
Closure, Biophys. J. 103: 2265–2274
Wang Y-C, Khan Z, Kaschube M, and Wieschaus EF, 2013. Differential positioning of adherens
junctions is associated with initiation of epithelial folding, Nature 484: 390–393
Wani OM, Zeng H, and Priimagi A, 2017. A light-driven artificial flytrap, Nat. Commun. 8: 15546
Ware TH, McConney ME, Wie JJ, Tondiglia VP, and White TJ, 2015. Voxelated liquid crystal
elastomers, Science 347: 982–984
Warner M and Terentjev EM, 2003. Liquid Crystal Elastomers, Clarendon Press, Oxford
