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Phys. Rev. Lett. 75: 4425–4428
Malinverno C, . . . , Scita G (23 coauthors), 2017. Endocytic reawakening of motility in jammed
epithelia, Nat. Mater. 16: 587–596
Marchetti MC, Joanny J-F, Ramaswamy S, Liverpool TB, Prost J, Rao M, and Simha RA, 2013.
Hydrodynamics of soft active matter, Rev. Mod. Phys. 85: 1143–1189
Marenduzzo D, 2016. An introduction to the statistical physics of active matter: motility-induced
phase separation and the “generic instability” of active gels, Eur. Phys. J. Spec. Top. 225: 2065–2077
Marth W, Praetorius S, and Voigt A, 2015. A mechanism for cell motility by active polar gels. J. R.
Soc. Interface 12: 20150161
Martin AC, Kaschube M, and Wieschaus EF, 2009. Pulsed contractions of an actinÐmyosin network
drive apical constriction, Nature 457: 495–499
Martin P and Lewis J, 1992. Actin cables and epidermal movement in embryonic wound healing,
Nature 360: 179–183
Mason FM, Tworoger M, and Martin AC, 2013. Apical domain polarization localizes actin-myosin
activity to drive ratchet-like apical constriction, Nat.Cell Biol. 15: 926–936
Matsumoto K, Takagi S, and Nakagaki T, 2008. Locomotive mechanism of Physarum plasmodia
based on spatiotemporal analysis of protoplasmic streaming, Biophys. J. 94: 2492–2504
Meinhardt H, 1982. Models of Biological Pattern Formation, Academic Press, London
Meinhardt H, 1995. The algorithmic beauty of sea shells, Springer-Verlag, Berlin (4th ed., 2009)
Meredith CH, Moerman PG, Groenewold J, Chiu Y-J, Kegel WK, van Blaaderen A, and Zarzar
LD, 2020. PredatorÐprey interactions between droplets driven by non-reciprocal oil exchange, Nat.
Chem. 12: 1136–1142
Michelin S and Lauga E, 2015. Autophoretic locomotion from geometric asymmetry, Eur. Phys. J.
E 38: 7
Miklius MP and Hilgenfeldt S, 2011. Epithelial tissue statistics: Eliminating bias reveals morphological and morphogenetic features, Eur. Phys. J. E 34: 50
Misra M, Audoly B, and Shvartsman SY, 2017. Complex structures from patterned cell sheets. Phil.
Trans. R. Soc. B 372: 20150515
Moeendarbary E, Valon E, Fritzsche M, Harris AR, Moulding DA, Thrasher AJ, Stride E, Mahadevan L, and Charras GT, 2013. The cytoplasm of living cells behaves as a poroelastic material, Nat.
Mater. 12: 253–261
Moerman PG, Moyses HW, van der Wee EB, Grier DG, van Blaaderen A, Kegel WK, Groenewold
J, and Brujic J, 2017. Solute-mediated interactions between active droplets, Phys. Rev. E 96: 032607
Mogilner A and Oster G, 2006. Cell motility driven by actin polymerization, Biophys. J. 71: 3030–
3045
Mogilner A and Manhart A, 2018. Intracellular Fluid Mechanics: Coupling Cytoplasmic Flow with
Active Cytoskeletal Gel, Annu. Rev. Fluid Mech. 50: 347–370
Moran JL and Posner JD, 2017. Phoretic Self-Propulsion, Annu. Rev. Fluid Mech. 49: 511–540
Morozov KI and Pismen LM, 2011. Cytoskeleton fluidization versus resolidification: Prestress
effect, Phys. Rev. E 83: 051920
Mota C, Camarero-Espinosa S, Baker MB, Wieringa P, and Moroni L, 2020. Bioprinting: From
Tissue and Organ Development to in Vitro Models, Chem. Rev. 120: 10547–10607
213
MacKintosh FC, Käs J, and Janmey PA, 1995. Elasticity of Semiflexible Biopolymer Networks,
Phys. Rev. Lett. 75: 4425–4428
Malinverno C, . . . , Scita G (23 coauthors), 2017. Endocytic reawakening of motility in jammed
epithelia, Nat. Mater. 16: 587–596
Marchetti MC, Joanny J-F, Ramaswamy S, Liverpool TB, Prost J, Rao M, and Simha RA, 2013.
Hydrodynamics of soft active matter, Rev. Mod. Phys. 85: 1143–1189
Marenduzzo D, 2016. An introduction to the statistical physics of active matter: motility-induced
phase separation and the “generic instability” of active gels, Eur. Phys. J. Spec. Top. 225: 2065–2077
Marth W, Praetorius S, and Voigt A, 2015. A mechanism for cell motility by active polar gels. J. R.
Soc. Interface 12: 20150161
Martin AC, Kaschube M, and Wieschaus EF, 2009. Pulsed contractions of an actinÐmyosin network
drive apical constriction, Nature 457: 495–499
Martin P and Lewis J, 1992. Actin cables and epidermal movement in embryonic wound healing,
Nature 360: 179–183
Mason FM, Tworoger M, and Martin AC, 2013. Apical domain polarization localizes actin-myosin
activity to drive ratchet-like apical constriction, Nat.Cell Biol. 15: 926–936
Matsumoto K, Takagi S, and Nakagaki T, 2008. Locomotive mechanism of Physarum plasmodia
based on spatiotemporal analysis of protoplasmic streaming, Biophys. J. 94: 2492–2504
Meinhardt H, 1982. Models of Biological Pattern Formation, Academic Press, London
Meinhardt H, 1995. The algorithmic beauty of sea shells, Springer-Verlag, Berlin (4th ed., 2009)
Meredith CH, Moerman PG, Groenewold J, Chiu Y-J, Kegel WK, van Blaaderen A, and Zarzar
LD, 2020. PredatorÐprey interactions between droplets driven by non-reciprocal oil exchange, Nat.
Chem. 12: 1136–1142
Michelin S and Lauga E, 2015. Autophoretic locomotion from geometric asymmetry, Eur. Phys. J.
E 38: 7
Miklius MP and Hilgenfeldt S, 2011. Epithelial tissue statistics: Eliminating bias reveals morphological and morphogenetic features, Eur. Phys. J. E 34: 50
Misra M, Audoly B, and Shvartsman SY, 2017. Complex structures from patterned cell sheets. Phil.
Trans. R. Soc. B 372: 20150515
Moeendarbary E, Valon E, Fritzsche M, Harris AR, Moulding DA, Thrasher AJ, Stride E, Mahadevan L, and Charras GT, 2013. The cytoplasm of living cells behaves as a poroelastic material, Nat.
Mater. 12: 253–261
Moerman PG, Moyses HW, van der Wee EB, Grier DG, van Blaaderen A, Kegel WK, Groenewold
J, and Brujic J, 2017. Solute-mediated interactions between active droplets, Phys. Rev. E 96: 032607
Mogilner A and Oster G, 2006. Cell motility driven by actin polymerization, Biophys. J. 71: 3030–
3045
Mogilner A and Manhart A, 2018. Intracellular Fluid Mechanics: Coupling Cytoplasmic Flow with
Active Cytoskeletal Gel, Annu. Rev. Fluid Mech. 50: 347–370
Moran JL and Posner JD, 2017. Phoretic Self-Propulsion, Annu. Rev. Fluid Mech. 49: 511–540
Morozov KI and Pismen LM, 2011. Cytoskeleton fluidization versus resolidification: Prestress
effect, Phys. Rev. E 83: 051920
Mota C, Camarero-Espinosa S, Baker MB, Wieringa P, and Moroni L, 2020. Bioprinting: From
Tissue and Organ Development to in Vitro Models, Chem. Rev. 120: 10547–10607
