TY - JOUR
T1 - Differences in RAD51 transcriptional response and cell cycle dynamics reveal varying sensitivity to DNA damage among Arabidopsis thaliana root cell types
AU - Kutashev, Konstantin
AU - Meschichi, Anis
AU - Reeck, Svenja
AU - Fonseca, Alejandro
AU - Sartori, Kevin
AU - White, Charles I.
AU - Sicard, Adrien
AU - Rosa, Stefanie
AU - Fonseca Cárdenas, Alejandro
AU - et al.
PY - 2024
Y1 - 2024
N2 - Throughout their lifecycle, plants are subjected to DNA damage from various sources, both environmental and endogenous. Investigating the mechanisms of the DNA damage response (DDR) is essential to unravel how plants adapt to the changing environment, which can induce varying amounts of DNA damage. Using a combination of whole-mount single-molecule RNA fluorescence in situ hybridization (WM-smFISH) and plant cell cycle reporter lines, we investigated the transcriptional activation of a key homologous recombination (HR) gene, RAD51, in response to increasing amounts of DNA damage in Arabidopsis thaliana roots. The results uncover consistent variations in RAD51 transcriptional response and cell cycle arrest among distinct cell types and developmental zones. Furthermore, we demonstrate that DNA damage induced by genotoxic stress results in RAD51 transcription throughout the whole cell cycle, dissociating its traditional link with S/G2 phases. This work advances the current comprehension of DNA damage response in plants by demonstrating quantitative differences in DDR activation. In addition, it reveals new associations with the cell cycle and cell types, providing crucial insights for further studies of the broader response mechanisms in plants.
AB - Throughout their lifecycle, plants are subjected to DNA damage from various sources, both environmental and endogenous. Investigating the mechanisms of the DNA damage response (DDR) is essential to unravel how plants adapt to the changing environment, which can induce varying amounts of DNA damage. Using a combination of whole-mount single-molecule RNA fluorescence in situ hybridization (WM-smFISH) and plant cell cycle reporter lines, we investigated the transcriptional activation of a key homologous recombination (HR) gene, RAD51, in response to increasing amounts of DNA damage in Arabidopsis thaliana roots. The results uncover consistent variations in RAD51 transcriptional response and cell cycle arrest among distinct cell types and developmental zones. Furthermore, we demonstrate that DNA damage induced by genotoxic stress results in RAD51 transcription throughout the whole cell cycle, dissociating its traditional link with S/G2 phases. This work advances the current comprehension of DNA damage response in plants by demonstrating quantitative differences in DDR activation. In addition, it reveals new associations with the cell cycle and cell types, providing crucial insights for further studies of the broader response mechanisms in plants.
KW - Arabidopsis thaliana
KW - cell cycle arrest
KW - cell cycle checkpoints
KW - DNA damage
KW - double-strand breaks
KW - homologous recombination
KW - RAD51 transcription
KW - Arabidopsis thaliana
KW - cell cycle arrest
KW - cell cycle checkpoints
KW - DNA damage
KW - double-strand breaks
KW - homologous recombination
KW - RAD51 transcription
UR - https://res.slu.se/id/publ/130898
U2 - 10.1111/nph.19875
DO - 10.1111/nph.19875
M3 - Journal article
C2 - 38840557
SN - 0028-646X
VL - 243
SP - 966
EP - 980
JO - New Phytologist
JF - New Phytologist
IS - 3
ER -