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Updated: Sep 12, 2026

Recording Multicellular Behavior in Myxococcus xanthus Biofilms using Time-lapse Microcinematography
Published on: August 7, 2010
Role of cell cohesion in Myxococcus xanthus fruiting body formation
Abstract:
Dsp mutants of Myxococcus xanthus have a complex phenotype with abnormal cell cohesion, social motility, and development. All three defects are the result of a single mutation in the dsp locus, a region of DNA about 14 kilobases long. Cohesion appears to play a central role in social motility, since nonsocial mutants exhibit weak agglutination or, in the case of Dsp cells, no agglutination (L. J. Shimkets, J. Bacteriol. 166:837-841, 1986). However, Dsp cells can be agglutinated by cohesive strains of M. xanthus. This provided the opportunity to examine the role of cohesion during development by comparing the developmental phenotype of Dsp cells with that of Dsp cells mixed with cohesive strains. Dsp mutants were unable to complete any of the developmental behaviors: aggregation, fruiting body formation, developmental autolysis, and sporulation. Contact with cohesive strains seemed to restore some developmental characteristics to the Dsp cells. When allowed to develop with wild-type cells, Dsp cells accumulated in fruiting bodies and underwent developmental autolysis, but did not form a significant portion of the spore population. Igl mutants, which may be similar to the previously described frizzy mutants, are cohesive strains that are unable to form fruiting bodies. Mixing Igl cells with Dsp cells under developmental conditions resulted in fruiting body formation, although the Dsp cells were unable to form significant levels of myxospores. In spite of their inability to sporulate under developmental conditions, Dsp mutants did not appear to be defective in the sporulation process. In fact, they formed normal levels of myxospores in response to the chemical inducer glycerol.
Insights
Myxococcus xanthus Dsp mutants exhibit defects in cell cohesion, motility, and development. Cohesion is crucial for social motility and development, as mixing Dsp mutants with cohesive strains partially restores these processes.
Area of Science:
- Microbiology
- Molecular Biology
- Cell Biology
Background:
- Myxococcus xanthus Dsp mutants display pleiotropic defects in cell cohesion, social motility, and multicellular development.
- These defects stem from a single mutation within the dsp locus.
- Cell cohesion is implicated as a central factor in social motility and developmental processes.
Purpose of the Study:
- To investigate the role of cell cohesion in the social motility and developmental behaviors of Myxococcus xanthus.
- To analyze the developmental defects of Dsp mutants and the impact of mixing them with cohesive strains.
Main Methods:
- Comparative analysis of Dsp mutant phenotypes with wild-type and other mutant strains (Igl).
- Co-culturing Dsp mutants with cohesive strains (wild-type and Igl) under developmental conditions.
- Assessment of developmental behaviors including aggregation, fruiting body formation, autolysis, and sporulation.
Main Results:
- Dsp mutants exhibit complete failure in aggregation, fruiting body formation, developmental autolysis, and sporulation.
- Mixing Dsp mutants with cohesive strains partially restored developmental characteristics, including aggregation and autolysis.
- While Dsp mutants failed to sporulate developmentally, they formed normal levels of myxospores in response to glycerol, indicating the sporulation process itself is intact.
Conclusions:
- Cell cohesion is essential for normal social motility and complete multicellular development in Myxococcus xanthus.
- The absence of cohesion in Dsp mutants severely impairs developmental progression.
- Cohesive interactions can partially rescue developmental defects in Dsp mutants, highlighting the importance of cell-cell contact.
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