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Published on: July 3, 2025
Mycoplasma infection suppresses p53, activates NF-kappaB and cooperates with oncogenic Ras in rodent fibroblast
D Y Logunov1, D V Scheblyakov, O V Zubkova
1Gamaleya Research Institute for Epidemiology and Microbiology, Moscow, Russia.
Abstract:
Prokaryotes of the genus Mycoplasma are the smallest cellular organisms that persist as obligate extracellular parasites. Although mycoplasma infection is known to be associated with chromosomal instability and can promote malignant transformation, the mechanisms underlying these phenomena remain unknown. Since persistence of many cellular parasites requires suppression of apoptosis in host cells, we tested the effect of mycoplasma infection on the activity of the p53 and nuclear factor (NF)-kappaB pathways, major mechanisms controlling programmed cell death. To monitor the activity of p53 and NF-kappaB in mycoplasma-infected cells, we used a panel of reporter cell lines expressing the bacterial beta-galactosidase gene under the control of p53- or NF-kappaB-responsive promoters. Cells incubated with media conditioned with different species of mycoplasma showed constitutive activation of NF-kappaB and reduced activation of p53, common characteristics of the majority of human tumor cells, with M. arginini having the strongest effect among the species tested. Moreover, mycoplasma infection reduced the expression level and inducibility of an endogenous p53-responsive gene, p21(waf1), and inhibited apoptosis induced by genotoxic stress. Infection with M. arginini made rat and mouse embryo fibroblasts susceptible to transformation with oncogenic H-Ras, whereas mycoplasma-free cells underwent irreversible p53-dependent growth arrest. Mycoplasma infection was as effective as shRNA-mediated knockdown of p53 expression in making rodent fibroblasts permissive to Ras-induced transformation. These observations indicate that mycoplasma infection plays the role of a p53-suppressing oncogene that cooperates with Ras in cell transformation and suggest that the carcinogenic and mutagenic effects of mycoplasma might be due to inhibition of p53 tumor suppressor function by this common human parasite.
Insights
Mycoplasma infection suppresses the tumor suppressor p53, promoting cell transformation and potentially cancer. This common parasite inhibits p53 function, acting like an oncogene.
Area of Science:
- Microbiology
- Cell Biology
- Oncology
Background:
- Mycoplasma are the smallest bacteria and obligate parasites.
- Mycoplasma infection is linked to chromosomal instability and cancer, but mechanisms are unclear.
- Parasite survival often involves suppressing host cell apoptosis.
Purpose of the Study:
- To investigate the effect of Mycoplasma infection on p53 and nuclear factor (NF)-kappaB pathways controlling programmed cell death.
- To determine if Mycoplasma infection contributes to malignant transformation by affecting these pathways.
Main Methods:
- Utilized reporter cell lines to monitor p53 and NF-kappaB activity in Mycoplasma-infected cells.
- Assessed the expression of p53-responsive genes and apoptosis induction.
- Tested the susceptibility of infected fibroblasts to oncogenic H-Ras transformation.
Main Results:
- Mycoplasma infection constitutively activated NF-kappaB and reduced p53 activation.
- Infection decreased p53-responsive gene expression and inhibited stress-induced apoptosis.
- M. arginini infection enabled Ras-induced transformation of fibroblasts, mimicking p53 suppression.
Conclusions:
- Mycoplasma infection suppresses p53 tumor suppressor function.
- Mycoplasma acts as a p53-suppressing oncogene, cooperating with Ras in cell transformation.
- Inhibition of p53 by Mycoplasma may explain its carcinogenic and mutagenic effects.
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