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Detection and Quantification of Tunneling Nanotubes Using 3D Volume View Images
Published on: August 31, 2022
Mycoplasma exploits mammalian tunneling nanotubes for cell-to-cell dissemination
Bong-Woo Kim1, Jae-Seon Lee2, Young-Gyu Ko3
1Tunneling Nanotube Research Center, Korea University, Seoul 02841; Skin Innovation R&D Centre, HnB9 Co., Ltd. Cheongju 28161, Korea.
Abstract:
Using tunneling nanotubes (TNTs), various pathological molecules and viruses disseminate to adjacent cells intercellularly. Here, we show that the intracellular invasion of Mycoplasma hyorhinis induces the formation of actin- and tubulin-based TNTs in various mammalian cell lines. M. hyorhinis was found in TNTs generated by M. hyorhinis infection in NIH3T3 cells. Because mycoplasma-free recipient cells received mycoplasmas from M. hyorhinis-infected donor cells in a mixed co-culture system and not a spatially separated co-culture system, direct cell-to-cell contact via TNTs was necessary for the intracellular dissemination of M. hyorhinis. The activity of Rac1, which is a small GTP binding protein, was increased by the intracellular invasion of M. hyorhinis, and its pharmacological and genetic inhibition prevented M. hyorhinis infection-induced TNT generation in NIH3T3 cells. The pharmacological and genetic inhibition of Rac1 also reduced the cell-to-cell dissemination of M. hyorhinis. Based on these data, we conclude that intracellular invasion of M. hyorhinis induces the formation of TNTs, which are used for the cell-to-cell dissemination of M. hyorhinis. [BMB Reports 2019; 52(8): 490-495].
Insights
Mycoplasma hyorhinis infection triggers the formation of tunneling nanotubes (TNTs) in mammalian cells. These TNTs facilitate the spread of M. hyorhinis between cells, involving Rac1 protein activity.
Area of Science:
- Cell Biology
- Microbiology
- Infectious Diseases
Background:
- Tunneling nanotubes (TNTs) are known conduits for intercellular transport of molecules and pathogens.
- The role of TNTs in the dissemination of intracellular bacteria like Mycoplasma species remains largely unexplored.
Discussion:
- Mycoplasma hyorhinis infection directly induces the formation of actin- and tubulin-based TNTs in mammalian cell lines.
- M. hyorhinis resides within these infection-induced TNTs, indicating their role in bacterial transport.
- The small GTP binding protein Rac1 is crucial for M. hyorhinis-induced TNT formation and subsequent bacterial dissemination.
Key Insights:
- Intracellular invasion by M. hyorhinis activates Rac1, promoting TNT biogenesis.
- Direct cell-to-cell contact via TNTs is essential for M. hyorhinis intercellular spread.
- Inhibiting Rac1 activity effectively blocks both TNT formation and M. hyorhinis dissemination.
Outlook:
- Targeting Rac1-mediated TNT formation could be a novel therapeutic strategy against M. hyorhinis infections.
- Further research into the specific mechanisms of M. hyorhinis interaction with TNT components is warranted.
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