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Published on: June 3, 2016
Phospholipases AtPLDζ1 and AtPLDζ2 function differently in hypoxia
Sylvia Lindberg1, Albert Premkumar1, Ulla Rasmussen1
1Department of Ecology, Environmental and Plant Sciences, Stockholm University, Stockholm, SE-106 91, Sweden.
Plant phospholipase D zeta (PLDζ) enzymes are crucial for cellular responses to stress. Mutants lacking PLDζ1 or PLDζ2 exhibit distinct sensitivities to hypoxia, impacting calcium and reactive oxygen species signaling pathways.
Area of Science:
- Plant molecular biology
- Cellular signaling
- Abiotic stress response
Background:
- Plant phospholipases D (PLDs) and their phosphatidic acid (PA) byproducts regulate cellular processes, including stress responses.
- PLDζ1 and PLDζ2 in Arabidopsis are unique due to Ca2+-independent phox (PX) and pleckstrin (PH) homology domains.
- These PLDs play roles in membrane dynamics, hormone regulation, and biotic/abiotic stress.
Purpose of the Study:
- To investigate the roles of Arabidopsis PLDζ1 and PLDζ2 in response to hypoxic stress.
- To compare hypoxia-induced changes in cytosolic free calcium [Ca2+], hydrogen peroxide (H2O2), and PA levels in wild-type and pldζ1/pldζ2 mutant protoplasts.
Main Methods:
- Protoplast isolation from wild-type and mutant Arabidopsis plants.
- Quantification of cytosolic Ca2+ using Fura 2-AM fluorescent dye.
- Measurement of H2O2 levels with CM-H2DCFDA fluorescent dye.
- Enzymatic analysis of phosphatidic acid (PA) production.
Main Results:
- Mutants pldζ1 and pldζ2 displayed differential sensitivities to hypoxia.
- AtPLDζ1 was implicated in reactive oxygen species (ROS) signaling during hypoxia.
- AtPLDζ2 was found to be involved in cytosolic Ca2+ signaling under hypoxic conditions.
- Hypoxia increased PA levels in wild-type and pldζ1 mutants, but not in pldζ2 mutants.
Conclusions:
- AtPLDζ2 likely contributes to PA production via a calcium-dependent pathway during hypoxia.
- AtPLDζ1 appears more critical for ROS signaling in response to hypoxic stress.
- PLDζ isoforms play distinct, yet complementary, roles in plant hypoxia signaling pathways.
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