liebal2012_Fig3B

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Model Manuscripts

Proteolysis of beta-galactosidase following SigmaB activation in Bacillus subtilis.

  • Ulf W Liebal
  • Praveen K Sappa
  • Thomas Millat
  • Leif Steil
  • Georg Homuth
  • Uwe Völker
  • Olaf Wolkenhauer
Mol Biosyst 2012; 8 (6): 1806-1814
Abstract
In Bacillus subtilis the σ(B) mediated general stress response provides protection against various environmental and energy related stress conditions. To better understand the general stress response, we need to explore the mechanism by which the components interact. Here, we performed experiments in B. subtilis wild type and mutant strains to test and validate a mathematical model of the dynamics of σ(B) activity. In the mutant strain BSA115, σ(B) transcription is inducible by the addition of IPTG and negative control of σ(B) activity by the anti-sigma factor RsbW is absent. In contrast to our expectations of a continuous β-galactosidase activity from a ctc::lacZ fusion, we observed a transient activity in the mutant. To explain this experimental finding, we constructed mathematical models reflecting different hypotheses regarding the regulation of σ(B) and β-galactosidase dynamics. Only the model assuming instability of either ctc::lacZ mRNA or β-galactosidase protein is able to reproduce the experiments in silico. Subsequent Northern blot experiments revealed stable high-level ctc::lacZ mRNA concentrations after the induction of the σ(B) response. Therefore, we conclude that protein instability following σ(B) activation is the most likely explanation for the experimental observations. Our results thus support the idea that B. subtilis increases the cytoplasmic proteolytic degradation to adapt the proteome in face of environmental challenges following activation of the general stress response. The findings also have practical implications for the analysis of stress response dynamics using lacZ reporter gene fusions, a frequently used strategy for the σ(B) response.
Id Name JWS model
model0_liebal2 liebal2 liebal2
model1_liebal2 liebal2 liebal2
model2_liebal2 liebal2 liebal2
Id Name Source Number of Data Sources
Id Name Model Simulation Simulation Simulation
task0_model0_liebal2 liebal2 0.0 400.0 1000
task1_model1_liebal2 liebal2 0.0 400.0 1000
task2_model2_liebal2 liebal2 0.0 400.0 1000

2D Plots

Id Name Number of Curves
Figure_3B Figure 3B 3

CSV Reports

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