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A Fluorescence-based Method to Study Bacterial Gene Regulation in Infected Tissues
Published on: February 19, 2019
Development of a high-brightness, genetically stable fluorescent reporter system for Mycoplasma pneumoniae and its
Ping-Lu Zhu1, Han-Fei Gong2, Heng-Bo Xu1
1College of Veterinary Medicine, Nanjing Agricultural University, Nanjing, 210095, China.
Abstract:
This study aimed to develop a genetically stable, high-brightness fluorescent reporter system for Mycoplasma pneumoniae (MP) and to demonstrate its utility in investigating host-pathogen interactions. The system is based on the mNeonGreen fluorescent protein. Its expression level was enhanced by utilizing the promoter of the MP tuf gene, while transposition efficiency was improved by codon optimization of the transposase gene. To facilitate the selection of recombinant mycoplasmas containing the transposon, strategies involving antibiotic resistance gene and promoter optimization were employed. Using random transposition via a miniTn4001 transposon vector, we achieved the efficient and stable integration of both mNeonGreen and an antibiotic resistance gene into the MP genome. Experimental results indicated that MP colonies electrotransformed with the chloramphenicol-resistant transposon exhibited normal morphology, whereas those with the tetracycline-resistant transposon showed abnormal morphology and growth defects. To evaluate the practicality of the resulting mNeonGreen-expressing recombinant MP strain (M129-mNeonGreen) for monitoring MP infection, particularly cellular adherence/invasion, we conducted infection assays using human bronchial epithelial cells (BEAS-2B) and human cervical adenocarcinoma cells (HeLa). Specific green fluorescence was observed by confocal microscopy when M129-mNeonGreen adhered to both BEAS-2B and HeLa cells, which was absent in cells infected with the wild-type M129 strain, confirming the utility of the recombinant strain for detecting MP infection. Furthermore, to validate the in vivo tracking capability of M129-mNeonGreen, BALB/c mice were infected with the recombinant strain. Frozen section analysis of lung tissues revealed specific green fluorescence signals three days post-infection, demonstrating the successful application of this reporter strain for in vivo tracing in a mouse model. In conclusion, this study successfully established a bright and genetically stable fluorescent reporter system for MP, providing a valuable tool for elucidating the in vivo and in vitro functionalities of MP.
Insights
Researchers developed a stable, bright fluorescent reporter for Mycoplasma pneumoniae (MP) using mNeonGreen. This tool effectively tracks MP infections in vitro and in vivo, aiding host-pathogen interaction studies.
Area of Science:
- Microbiology
- Molecular Biology
- Biotechnology
Background:
- Mycoplasma pneumoniae (MP) is a significant human pathogen.
- Investigating MP host-pathogen interactions requires effective tracking tools.
- Existing methods for MP visualization and tracking are limited.
Purpose of the Study:
- To develop a genetically stable, high-brightness fluorescent reporter system for MP.
- To demonstrate the utility of this reporter system in studying host-pathogen interactions.
- To enable efficient in vitro and in vivo tracking of MP infections.
Main Methods:
- Utilized mNeonGreen fluorescent protein for reporter system development.
- Employed the MP tuf gene promoter to enhance expression and codon optimization for improved transposition efficiency.
- Integrated mNeonGreen and antibiotic resistance genes into the MP genome via mini-Tn4001 transposon vector.
Main Results:
- Successfully generated a stable mNeonGreen-expressing MP strain (M129-mNeonGreen).
- Demonstrated M129-mNeonGreen's ability to visualize MP adherence and invasion in human epithelial cells (BEAS-2B, HeLa) via confocal microscopy.
- Confirmed successful in vivo tracking of M129-mNeonGreen in a mouse model (BALB/c) by detecting fluorescence in lung tissues post-infection.
Conclusions:
- Established a bright and genetically stable fluorescent reporter system for MP.
- The M129-mNeonGreen strain serves as a valuable tool for elucidating MP in vitro and in vivo functionalities.
- This reporter system significantly advances the study of MP pathogenesis and host interactions.
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