Transposon mutagenesis identifies genes associated with Mycoplasma pneumoniae gliding motility
Benjamin M Hasselbring1, Clinton A Page, Edward S Sheppard
1Department of Microbiology, University of Georgia, Athens, 523 Biological Sciences Building, GA 30602, USA.
Abstract:
The wall-less prokaryote Mycoplasma pneumoniae, a common cause of chronic respiratory tract infections in humans, is considered to be among the smallest and simplest known cells capable of self-replication, yet it has a complex architecture with a novel cytoskeleton and a differentiated terminal organelle that function in adherence, cell division, and gliding motility. Recent findings have begun to elucidate the hierarchy of protein interactions required for terminal organelle assembly, but the engineering of its gliding machinery is largely unknown. In the current study, we assessed gliding in cytadherence mutants lacking terminal organelle proteins B, C, P1, and HMW1. Furthermore, we screened over 3,500 M. pneumoniae transposon mutants individually to identify genes associated with gliding but dispensable for cytadherence. Forty-seven transformants having motility defects were characterized further, with transposon insertions mapping to 32 different open reading frames widely distributed throughout the M. pneumoniae genome; 30 of these were dispensable for cytadherence. We confirmed the clonality of selected transformants by Southern blot hybridization and PCR analysis and characterized satellite growth and gliding by microcinematography. For some mutants, satellite growth was absent or developed more slowly than that of the wild type. Others produced lawn-like growth largely devoid of typical microcolonies, while still others had a dull, asymmetrical leading edge or a filamentous appearance of colony spreading. All mutants exhibited substantially reduced gliding velocities and/or frequencies. These findings significantly expand our understanding of the complexity of M. pneumoniae gliding and the identity of possible elements of the gliding machinery, providing a foundation for a detailed analysis of the engineering and regulation of motility in this unusual prokaryote.
Insights
This study identified 32 new genes in Mycoplasma pneumoniae involved in gliding motility, expanding knowledge of this common respiratory pathogen's complex movement mechanisms.
Area of Science:
- Microbiology
- Cell Biology
- Prokaryotic Motility
Background:
- Mycoplasma pneumoniae is a wall-less prokaryote causing chronic respiratory infections.
- It possesses a complex cytoskeleton and terminal organelle for adherence, division, and gliding motility.
- The genetic basis of M. pneumoniae gliding machinery is largely unknown.
Purpose of the Study:
- To identify genes essential for M. pneumoniae gliding motility.
- To investigate genes involved in gliding but dispensable for cytadherence.
Main Methods:
- Screened over 3,500 M. pneumoniae transposon mutants.
- Characterized 47 transformants with motility defects.
- Confirmed clonality via Southern blot and PCR.
- Analyzed satellite growth and gliding using microcinematography.
Main Results:
- Identified 32 open reading frames associated with gliding defects, 30 dispensable for cytadherence.
- Mutants showed altered colony morphology and significantly reduced gliding velocity and/or frequency.
- Observed variations in satellite growth, colony edge appearance, and spreading patterns.
Conclusions:
- Significantly expanded the understanding of M. pneumoniae gliding complexity.
- Identified novel potential elements of the gliding machinery.
- Provided a foundation for further analysis of motility engineering and regulation.
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