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Flavonoids and darkness lower PCD in senescing Vitis vinifera suspension cell cultures
Alberto Bertolini1, Elisa Petrussa1, Sonia Patui1
1Department of Agricultural, Food, Animal and Environmental Sciences, University of Udine, via delle Scienze, 91, 33100, Udine, Italy.
Background:
Senescence is a key developmental process occurring during the life cycle of plants that can be induced also by environmental conditions, such as starvation and/or darkness. During senescence, strict control of genes regulates ordered degradation and dismantling events, the most remarkable of which are genetically programmed cell death (PCD) and, in most cases, an upregulation of flavonoid biosynthesis in the presence of light. Flavonoids are secondary metabolites that play multiple essential roles in development, reproduction and defence of plants, partly due to their well-known antioxidant properties, which could affect also the same cell death machinery. To understand further the effect of endogenously-produced flavonoids and their interplay with different environment (light or dark) conditions, two portions (red and green) of a senescing grapevine callus were used to obtain suspension cell cultures. Red Suspension cell Cultures (RSC) and Green Suspension cell Cultures (GSC) were finally grown under either dark or light conditions for 6 days.
Results:
Darkness enhanced cell death (mainly necrosis) in suspension cell culture, when compared to those grown under light condition. Furthermore, RSC with high flavonoid content showed a higher viability compared to GSC and were more protected toward PCD, in accordance to their high content in flavonoids, which might quench ROS, thus limiting the relative signalling cascade. Conversely, PCD was mainly occurring in GSC and further increased by light, as it was shown by cytochrome c release and TUNEL assays.
Conclusions:
Endogenous flavonoids were shown to be good candidates for exploiting an efficient protection against oxidative stress and PCD induction. Light seemed to be an important environmental factor able to induce PCD, especially in GSC, which lacking of flavonoids were not capable of preventing oxidative damage and signalling leading to senescence.
Insights
Plant senescence involves programmed cell death (PCD). Flavonoids protect against oxidative stress and PCD, especially under light conditions, while darkness enhances cell death. This highlights flavonoids
Area of Science:
- Plant Biology
- Biochemistry
- Cellular Processes
Background:
- Senescence is a natural plant life cycle process, inducible by environmental stress like darkness.
- During senescence, plants regulate gene expression for degradation, including programmed cell death (PCD) and flavonoid biosynthesis.
- Flavonoids, known for antioxidant roles, may influence plant cell death pathways.
Purpose of the Study:
- To investigate the role of endogenous flavonoids in plant cell death during senescence.
- To determine the interplay between flavonoid content and environmental conditions (light/dark) on cell viability.
- To explore how flavonoids modulate oxidative stress and PCD in senescing grapevine cells.
Main Methods:
- Established red (high flavonoid) and green (low flavonoid) grapevine suspension cell cultures from senescing callus.
- Cultured these cells under light and dark conditions for six days.
- Assessed cell death using assays like cytochrome c release and TUNEL, and measured cell viability.
Main Results:
- Darkness increased overall cell death, primarily necrosis, compared to light conditions.
- High-flavonoid Red Suspension Cell Cultures (RSC) exhibited greater viability and protection against PCD than Green Suspension Cell Cultures (GSC).
- Programmed cell death (PCD) was more prevalent in GSC and exacerbated by light, suggesting a lack of flavonoid-mediated protection.
Conclusions:
- Endogenous flavonoids confer protection against oxidative stress and prevent PCD induction during senescence.
- Light acts as a significant environmental factor inducing PCD, particularly in flavonoid-deficient GSC.
- Flavonoids are crucial for preventing oxidative damage and mitigating senescence-associated signaling pathways.
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