Abstract
In this work, we quantitatively compare computer simulations and existing cell tracking data of P. aeruginosa surface motility in order to analyse the underlying motility mechanism. We present a three dimensional twitching motility model, that simulates the extension, retraction and surface association of individual Type IV Pili (TFP), and is informed by recent experimental observations of TFP. Sensitivity analysis is implemented to minimise the number of model parameters, and quantitative estimates for the remaining parameters are inferred from tracking data by approximate Bayesian computation. We argue that the motility mechanism is highly sensitive to experimental conditions. We predict a TFP retraction speed for the tracking data we study that is in a good agreement with experimental results obtained under very similar conditions. Furthermore, we examine whether estimates for biologically important parameters, whose direct experimental determination is challenging, can be inferred directly from tracking data. One example is the width of the distribution of TFP on the bacteria body. We predict that the TFP are broadly distributed over the bacteria pole in both walking and crawling motility types. Moreover, we identified specific configurations of TFP that lead to transitions between walking and crawling states.
Funder
National Natural Science Foundation of China
Chinese Academy of Sciences
K. C. Wong Education Foundation
Publisher
Public Library of Science (PLoS)
Reference51 articles.
1. A function of Pseudomonas aeruginosa PAO polar pili: twitching motility;DE Bradley;Canadian journal of microbiology,1980
2. The role of motility as a virulence factor in bacteria;C Josenhans;International Journal of Medical Microbiology,2002
3. Structure of a Pilin Monomer from Pseudomonas aeruginosa: IMPLICATIONS FOR THE ASSEMBLY OF PILI;DW Keizer;Journal of Biological Chemistry,2001
4. Direct observation of extension and retraction of type IV pili;JM Skerker;Proceedings of the National Academy of Sciences,2001
5. Competitive binding of independent extension and retraction motors explains the quantitative dynamics of type IV pili;MD Koch;Proceedings of the National Academy of Sciences,2021