bioRxiv Science⌕ Search

Biology subjects

Kawade, K.

Publications and source records attributed to Kawade, K..

2 recordsLinked to original sources

Functional conservation and divergence of Arabidopsis VENOSA4 and human SAMHD1 in DNA repair

The human deoxyribonucleoside triphosphatase (dNTPase) Sterile alpha motif and histidine-aspartate domain containing protein 1 (SAMHD1) has a dNTPase-independent role in repairing DNA double-strand breaks (DSBs) by homologous recombination (HR). Here, we show that VENOSA4 (VEN4), the probable Arabidopsis thaliana ortholog of SAMHD1, also functions in DSB repair by HR. The ven4 loss-of-function mutants showed increased DNA ploidy and deregulated DNA repair genes, suggesting DNA damage accumulation. Hydroxyurea, which blocks DNA replication and generates DSBs, induced VEN4 expression. The ven4 mutants were hypersensitive to hydroxyurea, with decreased DSB repair by HR. Metabolomic analysis of the strong ven4-0 mutant revealed depletion of metabolites associated with DNA damage responses. In contrast to SAMHD1, VEN4 showed no evident involvement in preventing R-loop accumulation. Our study thus reveals functional conservation in DNA repair by VEN4 and SAMHD1. One sentence summaryHuman SAMHD1 is involved in dNTP metabolism and DNA repair; the latter function is conserved in VEN4, its likely Arabidopsis ortholog.

plant biology↗

Intronic TNR-retained ISOPROPYLMALATE ISOMERASE LARGE SUBUNIT1 transcripts impair leaf development in Arabidopsis

Intronic trinucleotide repeat (TNR) is widely distributed in plant genomes. In Arabidopsis accession Bur-0, abnormally expanded TTC repeat in intron-3 of the ISOPROPYLMALATE ISOMERASE LARGE SUBUNIT1 (IIL1) gene causes growth defects called the irregularly impaired leaves (iil) phenotype, triggered by DNA methylation-mediated IIL1 gene silencing at elevated temperature. However, little is known about how the reduced expression of IIL1 causes the iil phenotype. We demonstrated that the iil phenotype was resulted from the relative increase of intron-3-retained IIL1 transcripts through the experiments where the iil phenotype was reproduced by introducing the IIL1 gene harboring 100 copies of TTC repeat into Col-0. The iil phenotype appeared when the total amount of the IIL1 transcripts was decreased by co-suppression and the percentage of intron-3-retained IIL1 transcripts was increased. The IIL1 gene encodes an isopropylmalate isomerase large subunit, forming heterodimers with small subunits (AtLeuD1, AtLeuD2, or AtLeuD3). In the myb28 myb29 mutant lacking AtLeuD1 and AtLeuD2, the iil phenotype was almost completely suppressed regardless of higher percentage of intron-3-retained IIL1 transcripts. The results indicated that the iil phenotype was associated with interaction with AtLeuDs, suggesting that intronic TNR-containing transcripts were translated into abnormal proteins and perturbed the metabolic pathway supporting the leaf development.

plant biology↗