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Updated: May 9, 2026

Growth of Mycobacterium tuberculosis Biofilms
Published on: February 15, 2012
Pili contribute to biofilm formation in vitro in Mycobacterium tuberculosis
Saiyur Ramsugit1, Sinenhlanhla Guma, Balakrishna Pillay
1Medical Microbiology and Infection Control, School of Laboratory Medicine and Medical Sciences, College of Health Sciences, University of KwaZulu-Natal, 1st floor Doris Duke Medical Research Institute, Congella, Private Bag 7, Durban, 4013, South Africa.
Abstract:
Organized bacterial communities, or biofilms, provide an important reservoir for persistent cells that are inaccessible or tolerant to antibiotics. Curli pili are cell-surface structures produced by certain bacteria and have been implicated in biofilm formation in these species. In order to determine whether these structures, which were suggested to be encoded by the Rv3312A (mtp) gene, have a similar role in Mycobacterium tuberculosis, we generated a Δmtp mutant and a mtp-complemented strain of a clinical isolate of M. tuberculosis and analyzed these strains for their ability to produce pili in comparison to the wild-type strain. Phenotypic analysis by transmission electron microscopy proved the essentiality of mtp for piliation in M. tuberculosis. We then compared biofilm formation of the derived strains in detergent-free Sauton's media. Biofilm mass was quantified spectrophotometrically using crystal violet. Furthermore, we examined mtp gene expression by quantitative real-time PCR in wild-type cells grown under biofilm versus planktonic growth conditions. We found a 68.4 % reduction in biofilm mass in the mutant compared to the wild-type strain (P = 0.002). Complementation of the mutant resulted in a restoration of the wild-type biofilm phenotype (P = 0.022). We, however, found no significant difference between mtp expression in cells of the biofilm to those growing planktonically. Our findings highlight a crucial, but non-specific, role of pili in the biofilm lifestyle of M. tuberculosis and indicate that they may represent an important target for the development of therapeutics to attenuate biofilm formation, thereby potentially reducing persistence.
Insights
The Rv3312A (mtp) gene is essential for pili production in Mycobacterium tuberculosis, significantly reducing biofilm formation. Targeting these pili could be a therapeutic strategy against persistent bacterial infections.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Molecular Biology
Background:
- Biofilms harbor persistent bacterial cells tolerant to antibiotics.
- Curli pili are bacterial cell-surface structures involved in biofilm formation.
- The role of pili in Mycobacterium tuberculosis biofilm formation is not well understood.
Purpose of the Study:
- To investigate the role of the Rv3312A (mtp) gene in pili production and biofilm formation in Mycobacterium tuberculosis.
- To determine if pili are essential for the biofilm lifestyle of M. tuberculosis.
Main Methods:
- Generated a Δmtp mutant and a complemented strain of M. tuberculosis.
- Analyzed pili production using transmission electron microscopy.
- Quantified biofilm mass using crystal violet staining and spectrophotometry.
- Assessed mtp gene expression via quantitative real-time PCR.
Main Results:
- The Δmtp mutant showed a significant 68.4% reduction in biofilm mass compared to the wild-type.
- Complementation restored the wild-type biofilm phenotype.
- Transmission electron microscopy confirmed mtp essentiality for pili production.
- No significant difference in mtp expression was observed between biofilm and planktonic growth.
Conclusions:
- Pili, encoded by the mtp gene, play a crucial role in Mycobacterium tuberculosis biofilm formation.
- These pili are essential for the biofilm lifestyle but their role is non-specific.
- Targeting pili may offer a novel therapeutic approach to attenuate M. tuberculosis biofilm formation and reduce bacterial persistence.
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