A Power-Law Dependence of Bacterial Invasion on Mammalian Host Receptors
Author(s) -
Tae J. Lee,
Jeffrey V. Wong,
Sena Bae,
Anna Jisu Lee,
Allison J. Lopatkin,
Fan Yuan,
Lingchong You
Publication year - 2015
Publication title -
plos computational biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.628
H-Index - 182
eISSN - 1553-7358
pISSN - 1553-734X
DOI - 10.1371/journal.pcbi.1004203
Subject(s) - internalization , bacteria , yersinia , biology , yersinia pseudotuberculosis , receptor , listeria monocytogenes , microbiology and biotechnology , escherichia coli , host (biology) , bacterial cell structure , genetics , virulence , gene
Pathogenic bacteria such as Listeria and Yersinia gain initial entry by binding to host target cells and stimulating their internalization. Bacterial uptake entails successive, increasingly strong associations between receptors on the surface of bacteria and hosts. Even with genetically identical cells grown in the same environment, there are vast differences in the number of bacteria entering any given cell. To gain insight into this variability, we examined uptake dynamics of Escherichia coli engineered to express the invasin surface receptor from Yersinia , which enables uptake via mammalian host β 1 -integrins. Surprisingly, we found that the uptake probability of a single bacterium follows a simple power-law dependence on the concentration of integrins. Furthermore, the value of a power-law parameter depends on the particular host-bacterium pair but not on bacterial concentration. This power-law captures the complex, variable processes underlying bacterial invasion while also enabling differentiation of cell lines.
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