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Published on: June 24, 2019
Nuclear DNA degradation during heterokaryon incompatibility in Neurospora crassa
Stephen M Marek1, Jennifer Wu, N Louise Glass
1Department of Plant Pathology, University of California, Davis, CA 95616, USA. mareks@okstate.edu
Abstract:
Many filamentous fungi are capable of undergoing conspecific hyphal fusion with a genetically different individual to form a heterokaryon. However, the viability of such heterokaryons is dependent upon vegetative (heterokaryon) incompatibility (het) loci. If two individuals undergo hyphal anastomosis, but differ in allelic specificity at one or more het loci, the fusion cell is usually compartmentalized and self-destructs. Many of the microscopic features associated with vegetative incompatibility resemble apoptosis in metazoans and plants. To test the hypothesis whether vegetative incompatibility results in nuclear degradation, a characteristic of apoptosis, the cytology of hyphal fusions between incompatible Neurospora crassa strains that differed at three het loci, mat, het-c and het-6, and the cytology of transformants containing incompatible het-c alleles were examined using fluorescent DNA stains and terminal deoxynucleotidyl transferase-mediated dUTP-X nick end labeling (TUNEL). Hyphal fusion cells between het incompatible strains and hyphal segments in het-c incompatible transformants were compartmentalized by septal plugging and contained heavily degraded nuclear DNA. Hyphal fusion cells in compatible self-pairings and hyphal cells in het-c compatible transformants were not compartmentalized and rarely showed TUNEL-positive nuclei. Cell death events also were observed in senescent, older hyphae. Morphological features of hyphal compartmentation and death during vegetative incompatibility and the extent to which it is genetically controlled can best be described as a form of programmed cell death.
Insights
Fungal vegetative incompatibility, triggered by genetic differences at het loci, causes self-destruction of fused hyphae. This process involves nuclear DNA degradation, resembling programmed cell death in other organisms.
Area of Science:
- Mycology
- Cell Biology
- Genetics
Background:
- Filamentous fungi can form heterokaryons through hyphal fusion.
- Heterokaryon viability depends on vegetative (heterokaryon) incompatibility (het) loci.
- Incompatibility leads to compartmentalization and self-destruction of fusion cells, mimicking apoptosis.
Purpose of the Study:
- To investigate if vegetative incompatibility in Neurospora crassa results in nuclear degradation, a hallmark of apoptosis.
- To examine the cytology of hyphal fusions between incompatible N. crassa strains and transformants with incompatible het-c alleles.
Main Methods:
- Utilized fluorescent DNA stains to visualize nuclear DNA.
- Employed terminal deoxynucleotidyl transferase-mediated dUTP-X nick end labeling (TUNEL) assay to detect DNA fragmentation.
- Examined hyphal fusions between N. crassa strains differing at mat, het-c, and het-6 loci.
Main Results:
- Incompatible hyphal fusion cells showed septal plugging and heavily degraded nuclear DNA (TUNEL-positive).
- Compatible self-pairings and compatible transformants lacked compartmentalization and had minimal TUNEL-positive nuclei.
- Cell death and compartmentation were observed in senescent hyphae, suggesting a broader role in fungal development.
Conclusions:
- Vegetative incompatibility in fungi involves nuclear DNA degradation, consistent with programmed cell death.
- The genetic control of hyphal compartmentation and death during incompatibility suggests a regulated cellular response.
- Fungal vegetative incompatibility can be characterized as a form of programmed cell death.
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