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Published on: April 8, 2016
Direct visualization of sequence-specific DNA binding by gonococcal type IV pili
Alex Hughes-Games1,2,3, Sean A Davis3, Darryl J Hill1
1School of Cellular and Molecular Medicine, University of Bristol, Bristol, UK.
Abstract:
Neisseria gonorrhoeae, the causative agent of gonorrhoea, is a major burden on global healthcare systems, with an estimated ~80-90 million new global cases annually. This burden is exacerbated by increasing levels of antimicrobial resistance, which has greatly limited viable antimicrobial therapies. Decreasing gonococcal drug susceptibility has been driven largely by accumulation of chromosomal resistance determinants, which can be acquired through natural transformation, whereby DNA in the extracellular milieu is imported into cells and incorporated into the genome by homologous recombination. N. gonorrhoeae possesses a specialized system for DNA uptake, which strongly biases transformation in favour of DNA from closely related bacteria by recognizing a 10-12 bp DNA uptake sequence (DUS) motif, which is highly overrepresented in their chromosomal DNA. This process relies on numerous proteins, including the DUS-specific receptor ComP, which assemble retractile protein filaments termed type IV pili (T4P) extending from the cell surface, and one model for neisserial DNA uptake proposes that these filaments bind DNA in a DUS-dependent manner before retracting to transport DNA into the periplasm. However, conflicting evidence indicates that elongated pilus filaments may not have such a direct role in DNA binding uptake as this model suggests. Here, we quantitatively measured DNA binding to gonococcal T4P fibres by directly visualizing binding complexes with confocal fluorescence microscopy in order to confirm the sequence-specific, comP-dependent DNA binding capacity of elongated T4P fibres. This supports the idea that pilus filaments could be responsible for initially capturing DNA in the first step of sequence-specific DNA uptake.
Insights
Neisseria gonorrhoeae uses DNA uptake sequences (DUS) to acquire DNA, aided by type IV pili (T4P). This study confirms T4P bind DNA in a DUS-specific manner, supporting their role in initial DNA capture for transformation.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Neisseria gonorrhoeae causes gonorrhea, a significant global health issue.
- Antimicrobial resistance in N. gonorrhoeae is increasing due to chromosomal resistance determinants acquired via natural transformation.
- Natural transformation involves DNA uptake mediated by a specialized system recognizing DNA uptake sequences (DUS).
Purpose of the Study:
- To investigate the role of type IV pili (T4P) in DNA binding during Neisseria gonorrhoeae transformation.
- To confirm sequence-specific, ComP-dependent DNA binding by elongated T4P fibers.
Main Methods:
- Quantitative measurement of DNA binding to gonococcal T4P fibers.
- Direct visualization of DNA-T4P binding complexes using confocal fluorescence microscopy.
Main Results:
- Elongated T4P fibers demonstrate sequence-specific DNA binding capacity.
- DNA binding to T4P is dependent on the ComP protein.
Conclusions:
- The findings support the hypothesis that T4P are involved in the initial capture of DUS-containing DNA during Neisseria gonorrhoeae transformation.
- This provides evidence for the direct role of T4P in sequence-specific DNA uptake.
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