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Alterations induced by the PML-RARα oncogene revealed by image cross correlation spectroscopy
Elena Cerutti1, Morgana D'Amico2, Isotta Cainero3
1Department of Physics and Astronomy "Ettore Majorana", University of Catania, Catania, Italy; Nanoscopy and NIC@IIT, CHT Erzelli, Istituto Italiano di Tecnologia, Genoa, Italy.
Abstract:
The molecular mechanisms that underlie oncogene-induced genomic damage are still poorly understood. To understand how oncogenes affect chromatin architecture, it is important to visualize fundamental processes such as DNA replication and transcription in intact nuclei and quantify the alterations of their spatiotemporal organization induced by oncogenes. Here, we apply superresolution microscopy in combination with image cross correlation spectroscopy to the U937-PR9 cell line, an in vitro model of acute promyelocytic leukemia that allows us to activate the expression of the PML-RARα oncogene and analyze its effects on the spatiotemporal organization of functional nuclear processes. More specifically, we perform Tau-stimulated emission depletion imaging, a superresolution technique based on the concept of separation of photons by lifetime tuning. Tau-stimulated emission depletion imaging is combined with a robust image analysis protocol that quickly produces a value of colocalization fraction on several hundreds of single cells and allows observation of cell-to-cell variability. Upon activation of the oncogene, we detect a significant increase in the fraction of transcription sites colocalized with PML/PML-RARα. This increase of colocalization can be ascribed to oncogene-induced disruption of physiological PML bodies and the abnormal occurrence of a relatively large number of PML-RARα microspeckles. We also detect a significant cell-to-cell variability of this increase of colocalization, which can be ascribed, at least in part, to a heterogeneous response of the cells to the activation of the oncogene. These results prove that our method efficiently reveals oncogene-induced alterations in the spatial organization of nuclear processes and suggest that the abnormal localization of PML-RARα could interfere with the transcription machinery, potentially leading to DNA damage and genomic instability.
Insights
Activating the PML-RARα oncogene disrupts nuclear organization, increasing transcription site colocalization with PML/PML-RARα. This oncogene-induced alteration affects nuclear processes and may lead to genomic instability.
Area of Science:
- Cell Biology
- Molecular Oncology
- Genomics
Background:
- Oncogene-induced genomic damage mechanisms are poorly understood.
- Visualizing nuclear processes' spatiotemporal organization is key to understanding oncogene effects.
- Acute promyelocytic leukemia models offer insights into oncogene function.
Purpose of the Study:
- To investigate how oncogenes alter chromatin architecture and nuclear processes.
- To quantify spatiotemporal organization changes induced by the PML-RARα oncogene.
- To analyze the effects of oncogene activation on DNA replication and transcription.
Main Methods:
- Superresolution microscopy (Tau-STED) combined with image cross-correlation spectroscopy.
- Utilized the U937-PR9 cell line, an in vitro model for acute promyelocytic leukemia.
- Developed a robust image analysis protocol for quantifying colocalization fraction in single cells.
Main Results:
- Activated PML-RARα oncogene significantly increased transcription site colocalization with PML/PML-RARα.
- Observed disruption of physiological PML bodies and formation of PML-RARα microspeckles.
- Detected significant cell-to-cell variability in colocalization, suggesting heterogeneous cellular responses.
Conclusions:
- The applied method efficiently reveals oncogene-induced alterations in nuclear process spatial organization.
- Abnormal PML-RARα localization interferes with the transcription machinery.
- Oncogene-induced nuclear alterations may contribute to DNA damage and genomic instability.
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