Project Details
Projekt Print View

Multicellular organization by a non-diffusible signal: Mathematical and experimental analysis of morphogenetic cell movements in myxobacteria

Subject Area Bioinformatics and Theoretical Biology
Term from 2005 to 2007
Project identifier Deutsche Forschungsgemeinschaft (DFG) - Project number 5451795
 
Final Report Year 2009

Final Report Abstract

The objective of this project was the analysis of pattern formation in the developmental phase of the myxobacterial life cycle. Based on biological experiments and mathematical modelling we wanted to analyze, whether the cell surface-associated C-signal is sufficient for explaining various aspects of the multicellular organization of myxobacteria (in particular rippling, streaming, and aggregation) and that additional signalling mechanisms are not required (e.g. diffusive signalHng). The project allowed to establish a successful cooperation of research groups that had not existed before. Initially, the experimental group in Marburg provided experimental data related to the characterisation of individual cell motiüty. Appropriate image analysis methods and cell-based models were designed and developed by the theory groups in Dresden and Berlin. Furthermore, modelling results, particularly on the clustering of self-propelled asymmetric cells, were used to design experiments in order to validate newly generated pattern formation hypotheses. Our main efforts were directed towards the emergence of local cell ordering which is an essential characteristics of rippling, streaming, and aggregation. We designed an experimental model system (based on appropriate motility mutants) for the quantitative analysis of cell ordering. In particular, we studied a mutant with a deficiency in cell reversal and cont act-dependent motility and showed that in the vegetative phase populations of this mutant organize into compact clusters of aligned cells. The observed clustering behaviour can be explained by the hypothesis that actively unidirectionally moving rod-shaped cells may form clusters just by mechanical interaction (volume exclusion). We could link our hypothesis to the well-recognised statistical physics research field of "self-propelled particles", where we contributed novel insights to the emergence of collective migration. In particular, we showed that systems of self-propelled rods may exhibit a characteristic change in the cluster size distribution, depending on the density and/or length-to-width aspect ratio of the particles. In order to validate our theoretical results in the myxobacterial system we designed and conducted a series of clustering experiments. Imaging techniques combined with statistical data analysis allowed to extract reliable information about the intesity of local cell ordering in terms of a cluster size distribution. Especially, the theoretically predicted characteristic change in the cluster size distribution was recovered in the experiments. Thus, we have demonstrated that cell communication, e.g. mediated via C-signaling, is not required for local cell alignment, although collective migration is commonly understood as a social behaviour. Our team spent a major part of the project on cluster formation, since we had to carry out a large number of experiments and data analysis for two motility mutants (a S-motility and cell reversal deficient mutant (SA2407) and a completely non-motile mutant (SA2808)). In addition, we continued our work on rippling pattern formation. Meanwhile, our research has led to a good understanding of the rippling and the clustering patterns forming in the early developmental phase. We have only started to investigate aggregation patterns appearing subsequently. This and the later formation of three-dimensional fruiting bodies requires the development of three-dimensional models and simulations together with the design of appropriate biological experiments and threedimensional image analysis tools.

Publications

  • (2006). A generalized discrete model linking rippling pattern formation and individual cell reversal statistics in colonies of myxobacteria. Phys. Biol, 3(2):138-146
    Börner, U., Deutsch, A., and Bär, M.
  • (2006). Non-equilibrium clustering of self-propelled rods. Phys. Rev. E, 74(3):030904
    Peruani, F., Deutsch, A., and Bär, M.
  • (2007). A new mechanism for collective migration in M. xanthus. J. Stat. Phys., 128(1-2):269-286
    Starruß, J., Bley, T., Søgaard-Andersen, L., and Deutsch, A.
  • (2007). Coupling of protein localization and cell movements by a dynamically localized response regulator in Myxococcus xanthus. EMBO J., 26(21):4433-4444
    Leonardy, S., Freymark, G., Hebener, S., Ellehauge, E., and Søgaard-Andersen, L.
  • (2007). Self-propelled particles with fluctuating speed. Phys. Rev. Lett., 99(1):010602
    Peruani, F. and Morelli, L. G.
  • (2008). A mean-field theory for self-propelled particles interacting by velocity alignment mechanisms. Eur. Phys. J., 157(111)
    Peruani, F., Bär, M., and Deutsch, A.
  • (2008). Bacterial swarming driven by rod shape. In Deutsch, A., Brusch, L., Byrne, H., de Vries, G., and Herzel, H.-P., editors. Mathematical Modeling of Biological Systems, Volume I: Cellular Biophysics, Regulatory Networks, Development, Biomedicine, and Data Analysis. Birkhauser
    Starruß, J., Peruani, F., Bär, M., and Deutsch, A.
  • (2008). Dynamics and steady states in excitable mobile agent systems. Phys. Rev. Lett., 100:168103
    Peruani, F. and Sibona, G. J.
  • (2008). From individual to collective motion of self-propelled particles: The role of particle shape, orientational ordering and clustering. PhD thesis, TU Berlin
    Peruani, F.
  • (2008). PilB and PilT are ATPases acting antagonistically in type IV pilus function in Myxococcus xanthus. J. Bacteriol., 190(7):2411-2421
    Jakovljevic, V., Leonardy, S., Hoppert, M., and Søgaard-Andersen, L.
  • (2008). Regulated secretion of a protease activates intercellular signaling during fruiting body formation in M. xanthus. Dev. Cell, 15(4):627-634
    Rolbetzki, A., Ammon, M., Jakovljevic, V., Konovalova. A., and Søgaard-Andersen, L.
  • (2008). Reversing cells and oscillating motility proteins. Mol. Biosyst., 4(10):1009-1014
    Leonardy, S., Bulyha, L., and Søgaard-Andersen, L.
 
 

Additional Information

Textvergrößerung und Kontrastanpassung