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Query: EC:2.4.2.30 (
PARP
)
13,611
document(s) hit in 31,850,051 MEDLINE articles (0.00 seconds)
The radical-induced cell death1 and similar to RCD ONE1 genes of Arabidopsis thaliana encode members of the poly(ADP-ribose) polymerase (
PARP
) superfamily and have pleiotropic functions in development and abiotic stress response. In order to begin to understand the developmental and molecular bases of the defects seen in rcd1-3; sro1-1 plants, this study used the root as a model. Double mutant roots are short and display abnormally organized root apical meristems. However, acquisition of most cell fates within the root is not significantly disrupted. The identity of the quiescent centre is compromised, the zone of cell division is smaller than in wild-type roots and abnormal divisions are common, suggesting that
RCD1
and SRO1 are necessary to maintain cells in a division-competent state and to regulate division plane placement. In addition, differentiation of several cell types is disrupted in rcd1-3; sro1-1 roots and shoots, demonstrating that
RCD1
and SRO1 are also necessary for proper cell differentiation. Based on the data shown in this article and previous work, we hypothesize that
RCD1
and SRO1 are involved in redox control and, in their absence, an altered redox balance leads to abnormal development.
...
PMID:RCD1 and SRO1 are necessary to maintain meristematic fate in Arabidopsis thaliana. 2117 13
Abiotic and biotic stress can have a detrimental impact on plant growth and productivity. Hence, there is a substantial demand for key factors of stress responses to improve yield stability of crops. Members of the poly(ADP-ribose)polymerase (
PARP
) protein family, which post-translationally modify (PARylate) nuclear proteins, have been suggested as such universal determinants of plant stress responses. A role under abiotic stress has been inferred from studies in which a genetic or, more commonly, pharmacological inhibition of
PARP
activity improved the performance of stressed plants. To further elucidate the role of
PARP
proteins under stress, T-DNA knockout mutants for the three Arabidopsis thaliana
PARP
genes were subjected to drought, osmotic, salt, and oxidative stress. To exclude a functional redundancy, which was indicated by a transcriptional upregulation of the remaining parp genes, a parp triple mutant was generated. Surprisingly, parp mutant plants did not differ from wild type plants in any of these stress experiments, independent from the number of
PARP
genes mutated. The parp triple mutant was also analyzed for callose formation in response to the pathogenassociated molecular pattern flg22. Unexpectedly, callose formation was unaltered in the mutant, albeit pharmacological
PARP
inhibition robustly blocked this immune response, confirming previous reports. Evidently, pharmacological inhibition appears to be more robust than the abolition of all
PARP
genes, indicating the presence of so-far undescribed proteins with
PARP
activity. This was supported by the finding that protein PARylation was not absent, but even increased in the parp triple mutant. Candidates for novel
PARP
-inhibitor targets may be found in the SRO protein family. These proteins harbor a catalytic
PARP
-like domain and are centrally involved in stress responses. Molecular modeling analyses, employing animal PARPs as templates, indeed indicated a capability of the SRO proteins
RCD1
and SRO1 to bind nicotinamide-derived inhibitors. Collectively, the results of our study suggest that the stress-related phenotypes of
parp
mutants are highly conditional, and they call for a reconsideration of
PARP
inhibitor studies. In the context of this study, we also propose a unifying nomenclature of
PARP
genes and
parp
mutants, which is currently highly inconsistent and redundant.
...
PMID:No Silver Bullet - Canonical Poly(ADP-Ribose) Polymerases (PARPs) Are No Universal Factors of Abiotic and Biotic Stress Resistance of
Arabidopsis thaliana
. 2822 Jan 29