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Fluorescence Live-cell Imaging of the Complete Vegetative Cell Cycle of the Slow-growing Social Bacterium Myxococcus xanthus
Published on: June 20, 2018
Inhibition of cell-cell interactions in Myxococcus xanthus by congo red
1Department of Microbiology, University of Georgia, Athens 30602.
Abstract:
The function of molecules associated with the cell surface may be determined by examining the phenotype of cells treated with inhibitors specific to these cell surface molecules. This strategy was used to examine the function of the major Congo red receptor of the myxobacterium Myxococcus xanthus, which has a developmental cycle that involves social interactions among cells. A class of social motility mutations (A+ S-), known as dsp, may inhibit the same subcellular component as Congo red because the phenotype of wild-type cells which had been treated with Congo red resembled in several ways the phenotype of the Dsp mutants. First, Congo red inhibited agglutination of wild-type cells, whereas Dsp cells were incapable of agglutinating, even in the absence of Congo red. Second, Congo red inhibited fruiting body formation by wild-type cells and reduced the yield of myxospores. Untreated Dsp cells were unable to form fruiting bodies and produced few myxospores. Third, Congo red reduced the rate of wild-type gliding motility to a level comparable to that of untreated Dsp cells, but did not inhibit the A motility of Dsp cells. Finally, binding studies showed that Dsp cells lacked the major Congo red receptor. Wild-type cells bound Congo red with an apparent association constant of 2.4 X 10(5) M-1, while Dsp cells bound it with an apparent association constant of 8.5 X 10(3) M-1. Binding of Congo red to wild-type cells was saturated in less than 10 min and was reversible when excess Congo red was removed. These results suggest that the Congo red receptors are controlled by the S motility system and that these receptors are involved in cell cohesion, social motility, and fruiting body formation.
Insights
Congo red dye reveals the function of cell surface receptors in Myxococcus xanthus. These receptors are crucial for cell cohesion, social motility, and fruiting body formation, and are regulated by the S motility system.
Area of Science:
- Microbiology
- Molecular Biology
- Cell Biology
Background:
- Cell surface molecules play critical roles in cellular functions.
- Myxococcus xanthus exhibits complex social behaviors during its developmental cycle.
- Congo red is a dye that can interact with specific cell surface components.
Purpose of the Study:
- To investigate the function of the major Congo red receptor in Myxococcus xanthus.
- To determine the relationship between Congo red binding and social motility mutations (dsp).
Main Methods:
- Phenotypic analysis of wild-type and dsp mutant Myxococcus xanthus cells treated with Congo red.
- Assays for cell agglutination, fruiting body formation, and motility (gliding and A motility).
- Congo red binding studies using Scatchard analysis to determine association constants.
Main Results:
- Congo red inhibited wild-type cell agglutination, fruiting body formation, and reduced myxospore yield, mimicking dsp mutant phenotypes.
- Dsp mutants were deficient in agglutination, fruiting body formation, and showed altered motility compared to wild-type cells.
- Binding studies revealed that dsp mutants lacked the major Congo red receptor, with significantly lower binding affinity compared to wild-type cells.
Conclusions:
- The major Congo red receptor in Myxococcus xanthus is essential for cell cohesion, social motility, and fruiting body development.
- These Congo red receptors are regulated by the S motility system.
- The dsp mutations likely affect the expression or function of the Congo red receptor.

