Javascript must be enabled to continue!
Dark-induced decrease in ascorbate levels in Arabidopsis leaves occurs independently of ascorbate peroxidase and oxidase, recycling enzymes, and senescence signaling
View through CrossRef
Abstract
Ascorbate is a key antioxidant that protects plant cells from oxidative damage. While plants actively synthesize ascorbate during the day, its degradation becomes prominent under prolonged dark conditions. Since ascorbate degradation begins with its oxidized form, dehydroascorbate (DHA), this process inherently requires ascorbate oxidation. However, the molecular mechanisms underlying dark-induced ascorbate oxidation and subsequent degradation remain unclear. In this study, we investigated the role of intracellular and extracellular ascorbate redox regulation in controlling this process. Using Arabidopsis knockout mutants for key enzymes involved in ascorbate oxidation and recycling, including ascorbate peroxidase (APX), monodehydroascorbate reductase (MDAR), dehydroascorbate reductase (DHAR), and ascorbate oxidase (AO), as well as NADPH oxidases (rbohD and rbohF), we found that none of these enzymes significantly influenced the dark-induced decrease in ascorbate levels. Notably, ascorbate levels decreased similarly in newly generated multiple mutants, including a quintuple mutant (Δ
dhar pad2 mdar5
), which has severely impaired ascorbate recycling capacity, and the
ao2 rbohD
double mutant, which is strongly expected to exhibit a highly altered apoplastic redox state. Furthermore, we examined the potential involvement of senescence signaling, including ORESARA1 and ethylene signaling components, but found no evidence for their contribution. These findings indicate that the dark-induced decrease in ascorbate levels is not governed by conventional pathways for ascorbate oxidation and recycling or senescence signaling processes, suggesting an unidentified regulatory mechanism.
Title: Dark-induced decrease in ascorbate levels in Arabidopsis leaves occurs independently of ascorbate peroxidase and oxidase, recycling enzymes, and senescence signaling
Description:
Abstract
Ascorbate is a key antioxidant that protects plant cells from oxidative damage.
While plants actively synthesize ascorbate during the day, its degradation becomes prominent under prolonged dark conditions.
Since ascorbate degradation begins with its oxidized form, dehydroascorbate (DHA), this process inherently requires ascorbate oxidation.
However, the molecular mechanisms underlying dark-induced ascorbate oxidation and subsequent degradation remain unclear.
In this study, we investigated the role of intracellular and extracellular ascorbate redox regulation in controlling this process.
Using Arabidopsis knockout mutants for key enzymes involved in ascorbate oxidation and recycling, including ascorbate peroxidase (APX), monodehydroascorbate reductase (MDAR), dehydroascorbate reductase (DHAR), and ascorbate oxidase (AO), as well as NADPH oxidases (rbohD and rbohF), we found that none of these enzymes significantly influenced the dark-induced decrease in ascorbate levels.
Notably, ascorbate levels decreased similarly in newly generated multiple mutants, including a quintuple mutant (Δ
dhar pad2 mdar5
), which has severely impaired ascorbate recycling capacity, and the
ao2 rbohD
double mutant, which is strongly expected to exhibit a highly altered apoplastic redox state.
Furthermore, we examined the potential involvement of senescence signaling, including ORESARA1 and ethylene signaling components, but found no evidence for their contribution.
These findings indicate that the dark-induced decrease in ascorbate levels is not governed by conventional pathways for ascorbate oxidation and recycling or senescence signaling processes, suggesting an unidentified regulatory mechanism.
Related Results
Abstract A16: Wnt antagonist SFRP1 functions as secreted mediator of senescence
Abstract A16: Wnt antagonist SFRP1 functions as secreted mediator of senescence
Abstract
The purpose of this study was 1) to identify the mediator(s) of senescence that are secreted from senescent cells and induce senescence in an autocrine and ...
Ascorbic acid efflux from human brain microvascular pericytes: Role of re‐uptake
Ascorbic acid efflux from human brain microvascular pericytes: Role of re‐uptake
AbstractMicrovascular pericytes take up ascorbic acid on the ascorbate transporter SVCT2. Intracellular ascorbate then protects the cells against apoptosis induced by culture at di...
Delayed leaf senescence in ethylene‐deficient ACC‐oxidase antisense tomato plants: molecular and physiological analysis
Delayed leaf senescence in ethylene‐deficient ACC‐oxidase antisense tomato plants: molecular and physiological analysis
SummaryTo determine the role of ethylene during tomato (Lycopersicon esculentum Mill. cv. Alisa Craig) leaf senescence, transgenic ACC oxidase antisense plants were analysed. North...
Abstract 1850: Characterizing senescence response to PARP inhibition may provide opportunities for enhanced efficacy through combinations with senolytic agents
Abstract 1850: Characterizing senescence response to PARP inhibition may provide opportunities for enhanced efficacy through combinations with senolytic agents
Abstract
Background: Inhibition of poly (ADP-ribose) polymerase (PARP) is an exciting treatment strategy recently approved for prostate cancer patients with homologo...
Glutathione deficiency decreases tissue ascorbate levels in newborn rats: ascorbate spares glutathione and protects.
Glutathione deficiency decreases tissue ascorbate levels in newborn rats: ascorbate spares glutathione and protects.
Glutathione deficiency in newborn rats, produced by administration of L-buthionine-(S,R)-sulfoximine, a transition-state inactivator of gamma-glutamylcysteine synthetase, decreases...
Leaf senescence-associated genes and transcriptional changes under dark conditions
Leaf senescence-associated genes and transcriptional changes under dark conditions
Abstract
Background
Leaf senescence is a highly regulated and complex process that can be triggered by dark conditions, as demon...
The function of BoTCP25 in the regulation of leaf development of Chinese kale
The function of BoTCP25 in the regulation of leaf development of Chinese kale
XG Chinese kale (Brassica oleracea cv. ‘XiangGu’) is a variety of Chinese kale and has metamorphic leaves attached to the true leaves. Metamorphic leaves are secondary leaves emerg...

