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The PET1-CMS mitochondrial mutation in sunflower is associated with premature programmed cell death and cytochrome c
1University of Oxford, Department of Plant Sciences, South Parks Road, Oxford OX1 3RB, United Kingdom. janneke.balk@plant-sciences.ox.ac.uk
Abstract:
In mammals, mitochondria have been shown to play a key intermediary role in apoptosis, a morphologically distinct form of programmed cell death (PCD), for example, through the release of cytochrome c, which activates a proteolytic enzyme cascade, resulting in specific nuclear DNA degradation and cell death. In plants, PCD is a feature of normal development, including the penultimate stage of anther development, leading to dehiscence and pollen release. However, there is little evidence that plant mitochondria are involved in PCD. In a wide range of plant species, anther and/or pollen development is disrupted in a class of mutants termed CMS (for cytoplasmic male sterility), which is associated with mutations in the mitochondrial genome. On the basis of the manifestation of a number of morphological and biochemical markers of apoptosis, we have shown that the PET1-CMS cytoplasm in sunflower causes premature PCD of the tapetal cells, which then extends to other anther tissues. These features included cell condensation, oligonucleosomal cleavage of nuclear DNA, separation of chromatin into delineated masses, and initial persistence of mitochondria. In addition, immunocytochemical analysis revealed that cytochrome c was released partially from the mitochondria into the cytosol of tapetal cells before the gross morphological changes associated with PCD. The decrease in cytochrome c content in mitochondria isolated from male sterile florets preceded a decrease in the integrity of the outer mitochondrial membrane and respiratory control ratio. Our data suggest that plant mitochondria, like mammalian mitochondria, play a key role in the induction of PCD. The tissue-specific nature of the CMS phenotype is discussed with regard to cellular respiratory demand and PCD during normal anther development.
Insights
Plant mitochondria play a key role in programmed cell death (PCD), similar to mammals. Cytoplasmic male sterility (CMS) in sunflowers demonstrates premature PCD in anther tapetal cells, involving cytochrome c release from mitochondria.
Area of Science:
- Plant biology
- Cellular biology
- Mitochondrial research
Background:
- Mitochondria are crucial for apoptosis (programmed cell death) in mammals, involving cytochrome c release.
- Programmed cell death (PCD) is vital in plant development, such as anther dehiscence.
- Plant mitochondrial involvement in PCD is poorly understood, despite cytoplasmic male sterility (CMS) mutations affecting anther development.
Purpose of the Study:
- To investigate the role of plant mitochondria in PCD.
- To determine if sunflower cytoplasmic male sterility (PET1-CMS) induces PCD in anther tissues.
Main Methods:
- Morphological and biochemical analysis of sunflower anthers with PET1-CMS.
- Assessing markers of apoptosis: cell condensation, DNA fragmentation, chromatin changes.
- Immunocytochemical detection of cytochrome c release.
- Biochemical assays on isolated mitochondria from male-sterile and fertile florets.
Main Results:
- PET1-CMS cytoplasm induces premature PCD in sunflower tapetal cells, spreading to other anther tissues.
- Observed PCD markers include cell condensation, DNA cleavage, and chromatin condensation.
- Cytochrome c was partially released from mitochondria into the cytosol before major PCD.
- Decreased cytochrome c in male-sterile mitochondria preceded mitochondrial membrane damage and reduced respiratory control.
Conclusions:
- Plant mitochondria, like mammalian mitochondria, are key players in inducing PCD.
- The study provides evidence for mitochondrial involvement in plant PCD, particularly in CMS.
- Tissue-specific CMS phenotype is linked to cellular respiration demands and PCD during anther development.