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Geomagnetic Field (Gmf) and Plant Evolution: Investigating the Effects of Gmf Reversal on Arabidopsis thaliana Development and Gene Expression
Published on: November 30, 2015
ATM-mediated transcriptional and developmental responses to gamma-rays in Arabidopsis
Lilian Ricaud1, Caroline Proux, Jean-Pierre Renou
1CEA, DSV, Institut de Biologie Environnementale et de Biotechnologie (iBEB), Service de biologie végétale et de microbiologie environnementales (SBVME), Cadarache, Saint Paul-lez-Durance, France.
Abstract:
ATM (Ataxia Telangiectasia Mutated) is an essential checkpoint kinase that signals DNA double-strand breaks in eukaryotes. Its depletion causes meiotic and somatic defects in Arabidopsis and progressive motor impairment accompanied by several cell deficiencies in patients with ataxia telangiectasia (AT). To obtain a comprehensive view of the ATM pathway in plants, we performed a time-course analysis of seedling responses by combining confocal laser scanning microscopy studies of root development and genome-wide expression profiling of wild-type (WT) and homozygous ATM-deficient mutants challenged with a dose of gamma-rays (IR) that is sublethal for WT plants. Early morphologic defects in meristematic stem cells indicated that AtATM, an Arabidopsis homolog of the human ATM gene, is essential for maintaining the quiescent center and controlling the differentiation of initial cells after exposure to IR. Results of several microarray experiments performed with whole seedlings and roots up to 5 h post-IR were compiled in a single table, which was used to import gene information and extract gene sets. Sequence and function homology searches; import of spatio-temporal, cell cycling, and mutant-constitutive expression characteristics; and a simplified functional classification system were used to identify novel genes in all functional classes. The hundreds of radiomodulated genes identified were not a random collection, but belonged to functional pathways such as those of the cell cycle; cell death and repair; DNA replication, repair, and recombination; and transcription; translation; and signaling, indicating the strong cell reprogramming and double-strand break abrogation functions of ATM checkpoints. Accordingly, genes in all functional classes were either down or up-regulated concomitantly with downregulation of chromatin deacetylases or upregulation of acetylases and methylases, respectively. Determining the early transcriptional indicators of prolonged S-G2 phases that coincided with cell proliferation delay, or an anticipated subsequent auxin increase, accelerated cell differentiation or death, was used to link IR-regulated hallmark functions and tissue phenotypes after IR. The transcription burst was almost exclusively AtATM-dependent or weakly AtATR-dependent, and followed two major trends of expression in atm: (i)-loss or severe attenuation and delay, and (ii)-inverse and/or stochastic, as well as specific, enabling one to distinguish IR/ATM pathway constituents. Our data provide a large resource for studies on the interaction between plant checkpoints of the cell cycle, development, hormone response, and DNA repair functions, because IR-induced transcriptional changes partially overlap with the response to environmental stress. Putative connections of ATM to stem cell maintenance pathways after IR are also discussed.
Insights
The study reveals that AtATM is crucial for plant cell repair and development after DNA damage, impacting cell cycle and differentiation. This research identifies key genes and pathways involved in the plant
Area of Science:
- Plant molecular biology and genetics
- DNA damage response pathways
- Cell cycle regulation
Background:
- Ataxia Telangiectasia Mutated (ATM) is a vital kinase in eukaryotic DNA double-strand break signaling.
- ATM's role is critical in preventing meiotic and somatic defects, as seen in Arabidopsis and human Ataxia Telangiectasia (AT) patients.
- Understanding the plant ATM pathway is essential for comprehending DNA repair and cellular responses to genotoxic stress.
Purpose of the Study:
- To comprehensively analyze the ATM pathway in plants using time-course studies of seedling responses to gamma-ray irradiation.
- To investigate the role of Arabidopsis ATM (AtATM) in maintaining meristematic stem cell integrity and controlling cell differentiation post-irradiation.
- To identify novel genes and functional pathways regulated by AtATM in response to DNA damage.
Main Methods:
- Confocal laser scanning microscopy to study root development in wild-type (WT) and ATM-deficient Arabidopsis mutants.
- Genome-wide expression profiling (microarrays) of seedlings and roots up to 5 hours post-gamma-ray exposure.
- Bioinformatic analyses including sequence homology searches, functional classification, and integration of spatio-temporal expression data.
Main Results:
- AtATM is essential for maintaining the quiescent center and controlling initial cell differentiation in response to gamma-rays, with early defects observed in meristematic stem cells.
- Hundreds of radiomodulated genes were identified, belonging to critical functional pathways including cell cycle, DNA repair, transcription, and signaling, indicating robust cell reprogramming.
- Transcriptional changes were largely AtATM-dependent, showing distinct patterns of loss, attenuation, delay, or inverse/stochastic regulation in atm mutants, aiding in the identification of pathway components.
Conclusions:
- The study provides a valuable resource for understanding the intricate interactions between plant cell cycle checkpoints, development, hormone responses, and DNA repair.
- ATM-dependent transcriptional reprogramming is crucial for mitigating DNA double-strand breaks and maintaining cellular homeostasis after irradiation.
- Early transcriptional indicators of cell cycle delays and subsequent developmental changes (e.g., auxin response, differentiation, or death) were linked to ATM's role in tissue phenotypes.
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