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Published on: July 22, 2014
miRNA-Signature of Irradiated Ptch1+/- Mouse Lens is Dependent on Genetic Background
B Tanno1, G Babini2,3, S Leonardi1
1Laboratory of Biomedical Technologies, Agenzia Nazionale per le Nuove Tecnologie, l'Energia e lo Sviluppo Economico Sostenibile (ENEA), Rome, Italy.
Abstract:
One harmful long-term effect of ionizing radiation is cataract development. Recent studies have been focused on elucidating the mechanistic pathways involved in this pathogenesis. Since accumulating evidence has established a role of microRNAs in ocular diseases, including cataract, the goal of this work was to determine the microRNA signature of the mouse lens, at short time periods postirradiation, to understand the mechanisms related to radio-induced cataractogenesis. To evaluate the differences in the microRNA profiles, 10-week-old Patched1 heterozygous (Ptch1+/-) mice, bred onto two different genetic backgrounds (CD1 and C57Bl/6J), received whole-body 2 Gy γ-ray irradiation, and 24 h later lenses were collected. Next-generation sequencing and bioinformatics analysis revealed that genetic background markedly influenced the list of the deregulated microRNAs and the mainly predicted perturbed biological functions of 2 Gy irradiated Ptch1+/- mouse lenses. We identified a subset of microRNAs with a contra-regulated expression between strains, with a key role in regulating Toll-like receptor (TLR)-signaling pathways. Furthermore, a detailed analysis of miRNome data showed a completely different DNA damage response in mouse lenses 24 h postirradiation, mainly mediated by a marked upregulation of p53 signaling in Ptch1+/-/C57Bl/6J lenses that was not detected on a CD1 background. We propose a strict interplay between p53 and TLR signaling in Ptch1+/-/C57Bl/6J lenses shortly after irradiation that could explain both the resistance of this strain to developing lens opacities and the susceptibility of CD1 background to radiation-induced cataractogenesis through activation of epithelial-mesenchymal transition.
Insights
Genetic background significantly impacts microRNA profiles and DNA damage response in mouse lenses after radiation exposure. This influences susceptibility to radiation-induced cataractogenesis via p53 and Toll-like receptor signaling pathways.
Area of Science:
- Ophthalmology
- Radiation Biology
- Molecular Biology
Background:
- Ionizing radiation exposure is a known risk factor for cataract development.
- MicroRNAs play a crucial role in ocular disease pathogenesis, including cataracts.
- Understanding the molecular mechanisms of radiation-induced cataractogenesis is essential.
Purpose of the Study:
- To investigate the microRNA signature in mouse lenses at short time points after irradiation.
- To elucidate the role of genetic background in radiation-induced cataractogenesis.
- To identify microRNAs and signaling pathways involved in radio-induced cataractogenesis.
Main Methods:
- Whole-body gamma-ray irradiation (2 Gy) of Patched1 heterozygous (Ptch1+/-) mice on CD1 and C57Bl/6J backgrounds.
- Lens collection 24 hours post-irradiation.
- Next-generation sequencing and bioinformatics analysis of microRNA profiles (miRNome).
Main Results:
- Genetic background significantly altered microRNA profiles and predicted biological functions in irradiated mouse lenses.
- A subset of microRNAs showed contra-regulated expression between strains, impacting Toll-like receptor (TLR) signaling.
- A differential DNA damage response was observed, with p53 signaling upregulated in Ptch1+/-/C57Bl/6J but not in CD1 background lenses.
Conclusions:
- Genetic background influences the molecular response to radiation in mouse lenses.
- An interplay between p53 and TLR signaling in Ptch1+/-/C57Bl/6J lenses may confer resistance to cataract formation.
- CD1 background susceptibility to radiation-induced cataractogenesis might involve epithelial-mesenchymal transition activation.

