In silico model as a tool for interpretation of intestinal infection studies

Appl Environ Microbiol. 2007 Jan;73(2):508-15. doi: 10.1128/AEM.01299-06. Epub 2006 Nov 22.

Abstract

In nutrition research the number of human in vivo experiments is limited because of the many restrictions and the high costs of testing in humans. Up to now predictive computer models aiming to enhance research have been rare or too complex, with many nonmeasurable adjustable parameters. This study aimed to develop a basic physicochemical computer model for a first quantitative interpretation of results obtained from in vivo intestinal experiments with bacteria. This new modeling approach is validated with results obtained from gut infection studies in vivo. The design of the model is described, and its ability to reproduce experimental data is evaluated. The model predictions are compared with new experimental data. The phenomena that take place in the gastrointestinal tract are summarized by model constants for growth, adherence, and release of bacteria. Although the model is far from describing all details and many processes in the intestine are combined, the model calculation results lead to reasonable conclusions and interesting hypotheses. One of these hypotheses concluded from the model outcomes is that Escherichia coli bacteria have a much lower intestinal growth rate in humans than in rats. Extra laboratory validation experiments proved the reliability of this hypothesis predicted by the model. In addition, the known protective effect of dietary calcium and detrimental effect of clindamycin on the growth and adherence of Salmonella bacteria could be quantified. From these results it is clear that the model enhances the interpretation of in vivo gastrointestinal experiments and will facilitate research trajectories towards new functional foods that improve resistance to pathogenic bacteria in humans.

MeSH terms

  • Animals
  • Bacillaceae Infections / microbiology
  • Bacillaceae Infections / physiopathology
  • Bacillus / physiology
  • Bacteria / growth & development*
  • Bacteria / pathogenicity*
  • Bacterial Adhesion
  • Computer Simulation*
  • Disease Models, Animal*
  • Escherichia coli / growth & development
  • Escherichia coli / pathogenicity
  • Escherichia coli Infections / microbiology
  • Escherichia coli Infections / physiopathology
  • Feces / microbiology
  • Humans
  • Intestinal Diseases / microbiology*
  • Intestinal Diseases / physiopathology
  • Models, Biological*
  • Rats
  • Salmonella Infections / microbiology
  • Salmonella Infections / physiopathology
  • Salmonella enteritidis / growth & development
  • Salmonella enteritidis / pathogenicity
  • Spores, Bacterial / physiology