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Universality of clone dynamics during tissue development.
Rulands, Steffen; Lescroart, Fabienne; Chabab, Samira; Hindley, Christopher J; Prior, Nicole; Sznurkowska, Magdalena K; Huch, Meritxell; Philpott, Anna; Blanpain, Cedric; Simons, Benjamin D.
Afiliación
  • Rulands S; Cavendish Laboratory, Department of Physics, JJ Thomson Avenue, University of Cambridge, Cambridge CB3 0HE, UK.
  • Lescroart F; The Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Tennis Court Road, Cambridge CB2 1QN, UK.
  • Chabab S; Wellcome Trust Centre for Stem Cell Research, University of Cambridge, Tennis Court Road, Cambridge CB2 1QR, UK.
  • Hindley CJ; Max Planck Institute for the Physics of Complex Systems, Noethnitzer Str. 38, 01187 Dresden Germany.
  • Prior N; Center for Systems Biology Dresden, Pfotenhauer Str. 108, 01307 Dresden, Germany.
  • Sznurkowska MK; Université Libre de Bruxelles, Laboratory of Stem Cells and Cancer, Brussels B-1070, Belgium.
  • Huch M; Université Libre de Bruxelles, Laboratory of Stem Cells and Cancer, Brussels B-1070, Belgium.
  • Philpott A; Cavendish Laboratory, Department of Physics, JJ Thomson Avenue, University of Cambridge, Cambridge CB3 0HE, UK.
  • Blanpain C; The Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Tennis Court Road, Cambridge CB2 1QN, UK.
  • Simons BD; The Wellcome Trust/Cancer Research UK Gurdon Institute, University of Cambridge, Tennis Court Road, Cambridge CB2 1QN, UK.
Nat Phys ; 14(5): 469-474, 2018 May.
Article en En | MEDLINE | ID: mdl-29736183
ABSTRACT
The emergence of complex organs is driven by the coordinated proliferation, migration and differentiation of precursor cells. The fate behaviour of these cells is reflected in the time evolution their progeny, termed clones, which serve as a key experimental observable. In adult tissues, where cell dynamics is constrained by the condition of homeostasis, clonal tracing studies based on transgenic animal models have advanced our understanding of cell fate behaviour and its dysregulation in disease (1, 2). But what can be learned from clonal dynamics in development, where the spatial cohesiveness of clones is impaired by tissue deformations during tissue growth? Drawing on the results of clonal tracing studies, we show that, despite the complexity of organ development, clonal dynamics may converge to a critical state characterized by universal scaling behaviour of clone sizes. By mapping clonal dynamics onto a generalization of the classical theory of aerosols, we elucidate the origin and range of scaling behaviours and show how the identification of universal scaling dependences may allow lineage-specific information to be distilled from experiments. Our study shows the emergence of core concepts of statistical physics in an unexpected context, identifying cellular systems as a laboratory to study non-equilibrium statistical physics.

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Nat Phys Año: 2018 Tipo del documento: Article

Texto completo: 1 Base de datos: MEDLINE Idioma: En Revista: Nat Phys Año: 2018 Tipo del documento: Article