Rice MPR25 encodes a pentatricopeptide repeat protein and is essential for RNA editing of nad5 transcripts in

Takushi Toda1, Sota Fujii, Ko Noguchi

  • 1Laboratory of Environmental Plant Biotechnology, Graduate School of Agricultural Science, Tohoku University, 1-1 Tsutsumidori-Amamiyamachi, Sendai 981-8555, Japan.

Insights

The study reveals that MITOCHONDRIAL PPR25 (MPR25) in rice is crucial for RNA editing in mitochondria, impacting plant growth and photosynthesis. Its absence affects nad5 transcript editing, highlighting the interplay between organelles.

Area of Science:

  • Molecular Biology
  • Plant Science
  • Genetics

Background:

  • Pentatricopeptide repeat (PPR) proteins regulate organelle transcript modification.
  • MITOCHONDRIAL PPR25 (MPR25) is a mitochondrial PPR protein in rice belonging to the E subgroup.

Purpose of the Study:

  • To investigate the molecular function of the rice mitochondrial PPR gene MPR25.
  • To understand the role of MPR25 in plant development and organelle function.

Main Methods:

  • Generated a Tos17 knockout mutant of MPR25 in rice.
  • Analyzed plant growth, chlorophyll content, photosynthesis, and respiration rates.
  • Performed molecular analysis of RNA editing sites, protein localization, and enzyme activity.

Main Results:

  • The mpr25 mutant showed growth retardation, reduced chlorophyll, and decreased photosynthesis, particularly under high light.
  • MPR25 knockout prevented C-U RNA editing at the nad5 transcript's nucleotide 1580, altering a serine to leucine amino acid.
  • MPR25 localized to mitochondria and directly interacted with the nad5 editing site, though complex I activity was unaffected; alternative NADH dehydrogenases were upregulated.

Conclusions:

  • MPR25 is essential for specific RNA editing in mitochondrial nad5 transcripts, affecting plant development.
  • The findings suggest a coordinated interaction between mitochondria and chloroplasts in response to impaired mitochondrial function.
  • MPR25 plays a key role in maintaining plant health through precise regulation of mitochondrial gene expression.

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