Transient States with Long-Term Effects on Pattern Formation

ORAL

Abstract

Protein patterning is vital for many cellular processes. A prototypical example is the bacterial Min system, where self-organized pole-to-pole oscillations of MinCDE proteins guide the cell division machinery to midcell. These oscillations are based on the cycling of the ATPase MinD and its activating protein MinE between the membrane and cytoplasm. Recent biochemical evidence suggests that MinE switches between a latent and reactive conformational state, dependent on MinD. Combining mathematical modeling and in vitro reconstitution of mutant proteins, we show that the MinD-dependent conformational switch of MinE is essential for patterns to emerge over a broad and physiological range of protein concentrations. Our results suggest that conformational switching of an ATPase activating protein can lead to the dynamic sequestration of its distinct functional states and thereby confer robustness to an intracellular protein network with vital roles in bacterial cell division.

*E.F acknowledges support from the DFG via project B02 and P.S. via the project A09 within SFB 1032 and the German Excellence Initiatives via the ‘NanoSystems Initiative Munich (NIM)’. J.D. and S.K. are supported by a DFG fellowship through the Graduate School of Quantitative Biosciences Munich (QBM).

Presenters

  • Jonas Denk

    • Ludwig Maximilians University
    • LMU Munich

Authors

  • Jonas Denk

    • Ludwig Maximilians University
    • LMU Munich
  • Simon Kretschmer

    • Max-Planck-Institute of Biochemistry
  • Jacob Halatek

    • Ludwig Maximilians University
  • Petra Schwille

    • Max-Planck-Institute of Biochemistry
  • Erwin Frey

    • Ludwig Maximilians University
    • Physics Department, Ludwig-Maximilans-Universität München
    • Department of Physics, Ludwig Maximilians Universität München
    • Ludwig Maximilians Univ
    • Arnold Sommerfeld Center for Theoretical Physics (ASC) and Center for NanoScience (CeNS), Department of Physics, Ludwig-Maximilians-University Munich