Mastoparan-induced programmed cell death in the unicellular alga Chlamydomonas reinhardtii

Zhenya P Yordanova1, Ernst J Woltering, Veneta M Kapchina-Toteva

  • 1Department Plant Physiology, Sofia University 'St Kliment Ohridski', Sofia, Bulgaria.

Annals of Botany
|December 20, 2012
PubMed
Abstract

Insights

Wasp venom mastoparan triggers programmed cell death (PCD) in Chlamydomonas reinhardtii, exhibiting atypical features of necrosis and vacuolar cell death. Early cell death may not involve caspases, but later stages do, suggesting complex PCD pathways in algae.

Area of Science:

  • Cell Biology
  • Algal Biology
  • Programmed Cell Death

Background:

  • Unicellular algae can undergo programmed cell death (PCD) under stress.
  • Mechanisms of algal cellular suicide remain poorly understood.
  • Wasp venom mastoparan (MP) is a tool to study algal PCD.

Purpose of the Study:

  • Investigate the involvement of caspase-like proteases in MP-induced PCD.
  • Analyze DNA cleavage during MP-induced PCD.
  • Characterize the morphological changes associated with MP-induced PCD in Chlamydomonas reinhardtii.

Main Methods:

  • Exposure of C. reinhardtii to MP and time-course analysis of cell death.
  • Use of specific caspase inhibitors to assess protease roles.
  • Assay of YVADase activity using a fluorogenic caspase-1 substrate.
  • Evaluation of DNA fragmentation via DNA laddering and Comet analysis.
  • Confocal laser scanning microscopy for cellular morphology examination.

Main Results:

  • MP-treated cells showed features of necrosis and vacuolar cell death, sometimes concurrently.
  • Nucleus compaction and DNA fragmentation were observed.
  • YVADase activity increased rapidly, but early cell death was caspase-inhibitor resistant.
  • Caspase inhibitors suppressed cell death at later time points.
  • Conditioned medium from treated cells conferred protection.

Conclusions:

  • MP induced an atypical PCD in C. reinhardtii with vacuolar and necrotic features, similar to hypersensitive response.
  • Early PCD phase might be caspase-independent, while later stages involve caspase-like proteolysis.
  • Algal PCD pathways are diverse and depend on induction mode and cell sensitivity.

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